Actinide
Actinium
Alkali metal
Alkaline earth metal
Aluminium
Americium
Ammonium chloride
Anders Gustaf Ekeberg
Antimony
Antineutrino
Antoine Lavoisier
Apollo program
Applied Physics Letters
Arc furnace
Argon
Arsenic
Astatine
Atomic mass
Atomic nucleus
Atomic number
Atomic radius
Atomic weight
Barium
Bastnäsite
Bayan Obo
Berkelium
Beryllium
Beta decay
Beta particle
Binary compound
Bismuth
Bohrium
Boiling point
Boron
Breast milk
Brinell hardness test
Bromide
Bromine
Brookhaven National Laboratory
Bulk modulus
CAS registry number
CRC Press
CRT television
Cabbage
Cadmium
Caesium
Calcium
Californium
Camera lens
Cancer
Carbide
Carbon
Carborane
Carl Axel Arrhenius
Carl Gustav Mosander
Catalyst
Cathode ray tube
Celsius
Ceramic
Cerium
Chemical element
Chloride
Chlorine
Chromatography
Chromium
Cobalt
Coefficient of thermal expansion
Collective names of groups of like elements
Color television
Conversion electron
Coordinate covalent bond
Copernicium
Copper
Covalent radius
Critical temperature#superconductivity
Crystal structure
Cubic zirconia
Curium
Cyanosis
Czochralski process
D-block
Darmstadtium
Day
Decay energy
Decay mode
Decay product
Delayed nuclear radiation
Density
Deoxidizer
Diamond
Digital object identifier
Dopant
Doping (semiconductor)
Dubnium
Ductility
Dyspnea
Dysprosium
Earth (chemistry)
Einsteinium
Electrical resistivity and conductivity
Actinium
Alkali metal
Alkaline earth metal
Aluminium
Americium
Ammonium chloride
Anders Gustaf Ekeberg
Antimony
Antineutrino
Antoine Lavoisier
Apollo program
Applied Physics Letters
Arc furnace
Argon
Arsenic
Astatine
Atomic mass
Atomic nucleus
Atomic number
Atomic radius
Atomic weight
Barium
Bastnäsite
Bayan Obo
Berkelium
Beryllium
Beta decay
Beta particle
Binary compound
Bismuth
Bohrium
Boiling point
Boron
Breast milk
Brinell hardness test
Bromide
Bromine
Brookhaven National Laboratory
Bulk modulus
CAS registry number
CRC Press
CRT television
Cabbage
Cadmium
Caesium
Calcium
Californium
Camera lens
Cancer
Carbide
Carbon
Carborane
Carl Axel Arrhenius
Carl Gustav Mosander
Catalyst
Cathode ray tube
Celsius
Ceramic
Cerium
Chemical element
Chloride
Chlorine
Chromatography
Chromium
Cobalt
Coefficient of thermal expansion
Collective names of groups of like elements
Color television
Conversion electron
Coordinate covalent bond
Copernicium
Copper
Covalent radius
Critical temperature#superconductivity
Crystal structure
Cubic zirconia
Curium
Cyanosis
Czochralski process
D-block
Darmstadtium
Day
Decay energy
Decay mode
Decay product
Delayed nuclear radiation
Density
Deoxidizer
Diamond
Digital object identifier
Dopant
Doping (semiconductor)
Dubnium
Ductility
Dyspnea
Dysprosium
Earth (chemistry)
Einsteinium
Electrical resistivity and conductivity
Not to be confused with Ytterbium.
strontium ← yttrium → zirconium
Sc
↑
Y
↓
Lu
39Y
Periodic table
Appearance
silvery white
General properties
Name, symbol, number
yttrium, Y, 39
Pronunciation
/ˈɪtriəm/ IT-ree-əm
Element category
transition metal
Group, period, block
3, 5, d
Standard atomic weight
88.90585g·mol−1
Electron configuration
Kr 4d1 5s2
Electrons per shell
2, 8, 18, 9, 2 (Image)
Physical properties
Phase
solid
Density (near r.t.)
4.472 g·cm−3
Liquid density at m.p.
4.24 g·cm−3
Melting point
1799 K, 1526 °C, 2779 °F
Boiling point
3609 K, 3336 °C, 6037 °F
Heat of fusion
11.42 kJ·mol−1
Heat of vaporization
365 kJ·mol−1
Specific heat capacity
(25 °C) 26.53 J·mol−1·K−1
Vapor pressure
P (Pa)
1
10
100
1 k
10 k
100 k
at T (K)
1883
2075
(2320)
(2627)
(3036)
(3607)
Atomic properties
Oxidation states
3, 2, 1
Electronegativity
1.22 (Pauling scale)
Ionization energies
1st: 600 kJ·mol−1
2nd: 1180 kJ·mol−1
3rd: 1980 kJ·mol−1
Atomic radius
180 pm
Covalent radius
190±7 pm
Miscellanea
Crystal structure
hexagonal
Magnetic ordering
paramagnetic1
Electrical resistivity
(r.t.) (α, poly) 596 nΩ·m
Thermal conductivity
(300 K) 17.2 W·m−1·K−1
Thermal expansion
(r.t.) (α, poly)
10.6 µm/(m·K)
Speed of sound (thin rod)
(20 °C) 3300 m/s
Young's modulus
63.5 GPa
Shear modulus
25.6 GPa
Bulk modulus
41.2 GPa
Poisson ratio
0.243
Brinell hardness
589 MPa
CAS registry number
7440-65-5
Most stable isotopes
Main article: Isotopes of yttrium
iso
NA
half-life
DM
DE (MeV)
DP
87Y
syn
3.35 d
ε
-
87Sr
γ
0.48, 0.38D
-
88Y
syn
106.6 d
ε
-
88Sr
γ
1.83, 0.89
-
89Y
100%
89Y is stable with 50 neutrons
90Y
syn
2.67 d
β−
2.28
90Zr
γ
2.18
-
91Y
syn
58.5 d
β−
1.54
91Zr
γ
1.20
-
v · d · e
Yttrium ( /ˈɪtriəm/ IT-ree-əm) is a chemical element with symbol Y and atomic number 39. It is a silvery-metallic transition metal chemically similar to the lanthanoids and has historically been classified as a rare earth element.2 Yttrium is almost always found combined with the lanthanoids in rare earth minerals and is never found in nature as a free element. Its only stable isotope, 89Y, is also its only naturally occurring isotope.
In 1787, Carl Axel Arrhenius found a new mineral near Ytterby in Sweden and named it ytterbite, after the village. Johan Gadolin discovered yttrium's oxide in Arrhenius' sample in 1789,3 and Anders Gustaf Ekeberg named the new oxide yttria. Elemental yttrium was first isolated in 1828 by Friedrich Wöhler.4
The most important use of yttrium is in making phosphors, such as the red ones used in television cathode ray tube displays and in LEDs.5 Other uses include the production of electrodes, electrolytes, electronic filters, lasers and superconductors; various medical applications; and as traces in various materials to enhance their properties. Yttrium has no known biological role, and exposure to yttrium compounds can cause lung disease in humans.6
Contents
1 Characteristics
1.1 Properties
1.2 Similarity to the lanthanoids
1.3 Compounds and reactions
1.4 Nucleosynthesis and isotopes
2 History
3 Occurrence
3.1 Abundance
3.2 Production
4 Applications
4.1 Consumer
4.2 Garnets
4.3 Material enhancer
4.4 Medical
4.5 Superconductors
5 Precautions
6 Notes
7 References
8 Bibliography
9 Further reading
10 External links
Characteristics
Properties
Matamec Announces a 42% Increase in TREO Indicated Resources at its Zeus Property
MONTREAL, QUEBEC--(Marketwire - Jan. 20, 2011) - Matamec Explorations Inc. (" Matamec " or the "Company")(TSX VENTURE:MAT ) announces that it has received an updated NI 43-101 resource calculation from SGS Canada Inc. - Geostat geological group ("SGS Geostat") for the Kipawa deposit located on its Zeus property. For reference, the original resource estimate, dated May 20 th 2010, has been made ...
yttrium: Definition from Answers.com
yttrium n. ( Symbol Y ) A silvery metallic element, not a rare earth but occurring in nearly all rare-earth minerals, used in various metallurgical
Yttrium is a soft, silver-metallic, lustrous and highly crystalline transition metal in group 3. As expected by periodic trends, it is less electronegative than its predecessor in the group, scandium, more electronegative than its successor in the group, lanthanum, and less electronegative than the next member of period 5, zirconium.78 Yttrium is the first d-block element in the fifth period.
The pure element is relatively stable in air in bulk form, due to passivation resulting from the formation of a protective oxide (Y2O3) film on its surface. This film can reach a thickness of 10 µm when yttrium is heated to 750 °C in water vapor.9 When finely divided, however, yttrium is very unstable in air; shavings or turnings of the metal can ignite in air at temperatures exceeding 400 °C.4 Yttrium nitride (YN) is formed when the metal is heated to 1000 °C in nitrogen.9
Similarity to the lanthanoids
For more details on this topic, see Rare earth element.
The similarities of yttrium to the lanthanoids are so strong that the element has historically been grouped with them as a rare earth element,2 and is always found in nature together with them in rare earth minerals.10
Chemically, yttrium resembles these elements more closely than its neighbor in the periodic table, scandium,11 and if its physical properties were plotted against atomic number then it would have an apparent number of 64.5 to 67.5, placing it between the lanthanoids gadolinium and erbium.12
It often also falls in the same range for reaction order,9 resembling terbium and dysprosium in its chemical reactivity.5 Yttrium is so close in size to the so-called 'Yttrium group' of heavy lanthanoid ions that in solution, it behaves as if it were one of them.913 Even though the lanthanoids are one row farther down the periodic table than yttrium, the similarity in atomic radius may be attributed to the lanthanoid contraction.14
One of the few notable differences between the chemistry of yttrium and that of the lanthanoids is that yttrium is almost exclusively trivalent, whereas about half of the lanthanoids can have valences other than three.9
Compounds and reactions
See also: Category:Yttrium compounds
As a trivalent transition metal, yttrium forms various inorganic compounds, generally in the oxidation state of +3, by giving up all three of its valence electrons.15 A good example is yttrium(III) oxide (Y2O3), also known as yttria, a six-coordinate white solid.16
Yttrium forms a water-insoluble fluoride, hydroxide, and oxalate, but its bromide, chloride, iodide, nitrate and sulfate are all soluble in water.9 The Y3+ ion is colorless in solution because of the absence of electrons in the d and f electron shells.9
Water readily reacts with yttrium and its compounds to form Y2O3.10 Concentrated nitric and hydrofluoric acids do not rapidly attack yttrium, but other strong acids do.9
With halogens, yttrium forms trihalides such as yttrium(III) fluoride (YF3), yttrium(III) chloride (YCl3), and yttrium(III) bromide (YBr3) at temperatures above roughly 200 °C.6 Similarly, carbon, phosphorus, selenium, silicon and sulfur all form binary compounds with yttrium at elevated temperatures.9
Organoyttrium chemistry is the study of compounds containing carbon–yttrium bonds. A few of these are known to have yttrium in the oxidation state 0.1718 (The +2 state has been observed in chloride melts,19 and +1 in oxide clusters in the gas phase.20) Some trimerization reactions were observed by using organoyttrium compounds as catalysts.18 These compounds use YCl3 as a starting material, which in turn is obtained from Y2O3 and concentrated hydrochloric acid and ammonium chloride.2122
Hapticity is how a group of contiguous atoms of a ligand are coordinated to a central atom; it is indicated by the Greek character eta, η. Yttrium complexes were the first examples of complexes where carboranyl ligands were bound to a d0-metal center through a η7-hapticity.18 Vaporization of the graphite intercalation compounds graphite–Y or graphite–Y2O3 leads to the formation of endohedral fullerenes such as Y@C82.5 Electron spin resonance studies indicated the formation of Y3+ and (C82)3− ion pairs.5 The carbides Y3C, Y2C, and YC2 can each hydrolyze to form hydrocarbons.9
Nucleosynthesis and isotopes
Main article: Isotopes of yttrium
Immunomedics Inc. Is Spiking Higher On Study Results
Immunomedics Inc. (IMMU) just announced that repeated therapy cycles of its clivatuzumab tetraxetan, labeled with yttrium-90 plus low-dose gemcitabine at 200 mg/m2, extended median overall survival to 11.8 months, compared to the 5.4 months overall survival in patients treated with a single cycle.
Yttrium - New World Encyclopedia
Yttrium (chemical symbol Y, atomic number 39) is a lustrous, silvery metal that is found ... Yttrium iron garnet is an effective microwave filter, and yttrium ...
Yttrium in the Solar System was created through stellar nucleosynthesis, mostly by the s-process (≈72%), but also by the r-process (≈28%).23 The r-process consists of rapid neutron capture of lighter elements during supernova explosions. The s-process is a slow neutron capture of lighter elements inside pulsating red giant stars.24
Mira is an example of the type of red giant star where most of the yttrium in the solar system was created.
Yttrium isotopes are among the most common products of the nuclear fission of uranium occurring in nuclear explosions and nuclear reactors. In terms of waste management, the most important yttrium isotopes are 91Y and 90Y, with half-lives of 58.51 days and 64 hours, respectively.25 The first is formed directly from fission, while the latter, despite its short half-life, is in secular equilibrium with its long-lived parent isotope, strontium-90 (90Sr) with a half-life of 29 years.4
All group 3 elements have an odd number of protons and therefore have few stable isotopes.7 Yttrium itself has only one stable isotope, 89Y, which is also its only naturally occurring one. 89Y is thought to be more abundant than it otherwise would be, due in part to the s-process which allows enough time for isotopes created by other processes to decay by electron emission (neutron → proton).24note 1 Such a slow process tends to favor isotopes with mass numbers (A = protons + neutrons) around 90, 138 and 208, which have unusually stable atomic nuclei with 50, 82 and 126 neutrons, respectively.24note 24 89Y has a mass number close to 90 and has 50 neutrons in its nucleus.
At least 32 synthetic isotopes of yttrium have been observed, ranging in mass number from 76 to 108.25 The least stable of these is 106Y with a half-life of >150 ns (76Y has a half-life of >200 ns) and the most stable is 88Y with a half-life of 106.626 days.25 Besides the isotopes 91Y, 87Y, and 90Y, with half lives of 58.51 days, 79.8 hours, and 64 hours, respectively, all the other isotopes have half lives of less than a day and most of those have half-lives of less than an hour.25
Yttrium isotopes with mass numbers at or below 88 decay primarily by positron emission (proton → neutron) to form strontium (Z = 38) isotopes.25 Yttrium isotopes with mass numbers at or above 90 decay primarily by electron emission (neutron → proton) to form zirconium (Z = 40) isotopes.25 Isotopes with mass numbers at or above 97 are also known to have minor decay paths of β− delayed neutron emission.26
Yttrium has at least 20 metastable or excited isomers ranging in mass number from 78 to 102.25note 3 Multiple excitation states have been observed for 80Y and 97Y.25 While most of yttrium's isomers are expected to be less stable than their ground state, 78mY, 84mY, 85mY, 96mY, 98m1Y, 100mY, and 102mY have longer half-lives than their ground states, as these isomers decay by beta decay rather than isomeric transition.26
History
In 1787, army lieutenant and part-time chemist Carl Axel Arrhenius found a heavy black rock in an old quarry near the Swedish village of Ytterby (now part of the Stockholm Archipelago).3 Thinking that it was an unknown mineral containing the newly discovered element tungsten,27 he named it ytterbitenote 4 and sent samples to various chemists for further analysis.3
Johan Gadolin discovered yttrium oxide.
Johan Gadolin at the University of Åbo identified a new oxide or "earth" in Arrhenius' sample in 1789, and published his completed analysis in 1794.28note 5 Anders Gustaf Ekeberg confirmed this in 1797 and named the new oxide yttria.29 In the decades after Antoine Lavoisier developed the first modern definition of chemical elements, it was believed that earths could be reduced to their elements, meaning that the discovery of a new earth was equivalent to the discovery of the element within, which in this case would have been yttrium.note 6
Bolero Acquires the "Charge" REE Prospect in Northern BC
VANCOUVER, BRITISH COLUMBIA--(Marketwire - Feb. 3, 2011) - Bolero Resources Corp. (the "Company" or "Bolero"), (TSX VENTURE:BRU), (FRANKFURT:U7N1) announces it has acquired a 100% interest in the "Charge" Rare Earth Element prospect located in northern British Columba, approximately 50 kilometres southeast of the Kemess Mine operated by Northgate Minerals Corporation (NGX - TSX). Bolero's ...
Yttrium
Yttrium occurs in nearly all of the rare-earth minerals. Analysis of lunar rock samples obtained during the Apollo missions show a relatively high yttrium content. ...
In 1843, Carl Gustav Mosander found that samples of yttria contained three oxides: white yttrium oxide (yttria), yellow terbium oxide (confusingly, this was called 'erbia' at the time) and rose-colored erbium oxide (called 'terbia' at the time).30 A fourth oxide, ytterbium oxide, was isolated in 1878 by Jean Charles Galissard de Marignac.31 New elements would later be isolated from each of those oxides, and each element was named, in some fashion, after Ytterby, the village near the quarry in which they were found (see ytterbium, terbium, and erbium).32 In the following decades, seven other new metals were discovered in "Gadolin's yttria".3 Since yttria was a mineral after all and not an oxide, Martin Heinrich Klaproth renamed it gadolinite in honor of Gadolin.3
Yttrium metal was first isolated in 1828 when Friedrich Wöhler heated anhydrous yttrium(III) chloride with potassium:3334
YCl3 + 3 K → 3 KCl + Y
Until the early 1920s, the chemical symbol Yt was used for the element, after which Y came into common use.35
In 1987, yttrium barium copper oxide was found to achieve high-temperature superconductivity.36 It was only the second material known to exhibit this property,36 and it was the first known material to achieve superconductivity above the (economically important) boiling point of nitrogen.note 7
Occurrence
Xenotime crystals contain yttrium.
Abundance
Yttrium is found in most rare earth minerals,8 as well as some uranium ores, but is never found in nature as a free element.37 About 31 ppm of the Earth's crust is yttrium,5 making it the 28th most abundant element there, and 400 times more common than silver.38 Yttrium is found in soil in concentrations between 10 and 150 ppm (dry weight average of 23 ppm) and in sea water at 9 ppt.38 Lunar rock samples collected during the Apollo program have a relatively high yttrium content.32
Yttrium has no known biological role, though it is found in most, if not all, organisms and tends to concentrate in the liver, kidney, spleen, lungs, and bones of humans.39 There is normally as little as 0.5 milligrams found within the entire human body; human breast milk contains 4 ppm.40 Yttrium can be found in edible plants in concentrations between 20 ppm and 100 ppm (fresh weight), with cabbage having the largest amount.40 With up to 700 ppm, the seeds of woody plants have the highest known concentrations.40
Production
The chemical similarity of yttrium with the lanthanoids leads it to being enriched by the same processes and ends up in ores containing lanthanoids, forming rare earth minerals. A slight separation is recognized between the light (LREE) and the heavy rare earth elements (HREE) but this separation is never complete. Yttrium is concentrated in the HREE group even though it has a lower atomic mass.4142
A piece of yttrium. Yttrium is difficult to separate from other rare earth elements.
There are four main sources for REEs:43
Carbonate and fluoride containing ores such as the LREE bastnäsite ([(Ce, La, etc.)(CO3)F]) contain an average of 0.1%441 of yttrium compared to the 99.9% for the 16 other REEs.41 The main source for bastnäsite from the 1960s to the 1990s was the Mountain Pass rare earth mine in California, making the United States the largest producer of REEs during that period.4143
Monazite ([(Ce, La, etc.)PO4), which is mostly phosphate, is a placer deposit of sand that is created by the transportation and gravitational separation of eroded granite. Monazite as a LREE ore contains 2%41 (or 3%)44 of yttrium. The largest deposits were found in India and Brazil in the early 19th century, making these two countries the largest producers of yttrium in the first half of that century.4143
Xenotime, a REE phosphate, is the main HREE ore containing up to 60% of yttrium as yttrium phosphate (YPO4).41 The largest mine for this mineral is the Bayan Obo deposit in China, making China the largest exporter for HREE since the closure of the Mountain Pass mine in the 1990s.4143
Ion absorption clays or Lognan clays are the weathering products of granite and contain only 1% of REEs.41 The final ore concentrate can contain up to 8% of yttrium. Ion absorption clays are mostly mined in southern China.414345 Yttrium is also found in samarskite and fergusonite.38
Resident welcomed to research day
Del. Randy Swartzmiller, D-Hancock, at right, recently welcomed Chester resident and West Virginia University student, Jordan Beilhart, left, to the State Capitol for the eighth-annual Undergraduate Research Day, Jordan is the son of Chuck & Amy Beilhart of Chester.
WebElements Periodic Table of the Elements | Yttrium ...
This WebElements periodic table page contains Essential information for the element yttrium
It is difficult to separate yttrium from other rare earths. One method to obtain pure yttrium from the mixed oxide ores is to dissolve the oxide in sulfuric acid and fractionate it by ion exchange chromatography. With the addition of oxalic acid, the yttrium oxalate precipitates. The oxalate is converted into the oxide by heating under oxygen. By reacting the resulting yttrium oxide with hydrogen fluoride, yttrium fluoride is obtained.46
Annual world production of yttrium oxide had reached 600 tonnes by 2001, with reserves estimated at 9 million tonnes.38 Only a few tonnes of yttrium metal are produced each year by reducing yttrium fluoride to a metal sponge with calcium magnesium alloy. The temperature of an arc furnace of above 1,600 °C is sufficient to melt the yttrium.3846
Applications
Consumer
Yttrium is one of the elements used to make the red color in CRT televisions.
Yttria (Y2O3) can serve as host lattice for doping with Eu3+ cations as well as reactant to gain doped yttrium orthovanadate YVO4:Eu3+ or yttrium oxide sulfide Y2O2S:Eu3+ phosphors that give the red color in color television picture tubes,45note 8 though the red color itself is actually emitted from the europium while the yttrium collects energy from the electron gun and passes it to the phosphor.47 Yttrium compounds can serve as host lattices for doping with different lanthanoid cations. Besides Eu3+ also Tb3+ can be used as a doping agent leading to green luminescence. Yttria is also used as a sintering additive in the production of porous silicon nitride48 and as a common starting material for both material science and for producing other compounds of yttrium.
Yttrium compounds are used as a catalyst for ethylene polymerization.4 As a metal, it is used on the electrodes of some high-performance spark plugs.49 Yttrium is also used in the manufacturing of gas mantles for propane lanterns as a replacement for thorium, which is radioactive.50
Developing uses include yttrium-stabilized zirconia in particular as a solid electrolyte and as an oxygen sensor in automobile exhaust systems.5
Garnets
Nd:YAG laser rod 0.5 cm in diameter.
Yttrium is used in the production of a large variety of synthetic garnets,51 and yttria is used to make yttrium iron garnets (Y3Fe5O12 or YIG), which are very effective microwave filters.4 Yttrium, iron, aluminium, and gadolinium garnets (e.g. Y3(Fe,Al)5O12 and Y3(Fe,Ga)5O12) have important magnetic properties.4 YIG is also very efficient as an acoustic energy transmitter and transducer.52 Yttrium aluminium garnet (Y3Al5O12 or YAG) has a hardness of 8.5 and is also used as a gemstone in jewelry (simulated diamond).4 Cerium-doped yttrium aluminium garnet (YAG:Ce) crystals are used as phosphors to make white LEDs.535455
YAG, yttria, yttrium lithium fluoride (LiYF4), and yttrium orthovanadate (YVO4) are used in combination with dopants such as neodymium, erbium, ytterbium in near-infrared lasers.5657 YAG lasers have the ability to operate at high power and are used for drilling into and cutting metal.44 The single crystals of doped YAG are normally produced by the Czochralski process.58
Material enhancer
Small amounts of yttrium (0.1 to 0.2%) have been used to reduce the grain sizes of chromium, molybdenum, titanium, and zirconium.59 It is also used to increase the strength of aluminium and magnesium alloys.4 The addition of yttrium to alloys generally improves workability, adds resistance to high-temperature recrystallization and significantly enhances resistance to high-temperature oxidation (see graphite nodule discussion below).47
Yttrium can be used to deoxidize vanadium and other non-ferrous metals.4 Yttria is used to stabilize the cubic form of zirconia for use in jewelry.60
Yttrium has been studied for possible use as a nodulizer in the making of nodular cast iron which has increased ductility (the graphite forms compact nodules instead of flakes to form nodular cast iron).4 Yttrium oxide can also be used in ceramic and glass formulas, since it has a high melting point and imparts shock resistance and low thermal expansion characteristics.4 It is therefore used in camera lenses.38
Medical
Immunomedics reports encouraging results from Y-90-labeled clivatuzumab tetraxetan study in pancreatic cancer
Immunomedics, Inc., a biopharmaceutical company primarily focused on the development of monoclonal antibody-based products for the targeted treatment of cancer, autoimmune and other serious diseases, today announced that repeated therapy cycles of its proprietary antibody, clivatuzumab tetraxetan, labeled with yttrium-90 plus low-dose gemcitabine, extended median overall survival.
Yttrium - Wikimedia
Yttrium (pronounced /ˈɪtriəm/) is a chemical element with symbol Y and atomic number 39. ... Chemically, yttrium resembles these elements more closely than its ...
The radioactive isotope yttrium-90 is used in drugs such as Yttrium Y 90-DOTA-tyr3-octreotide and Yttrium Y 90 ibritumomab tiuxetan for the treatment of various cancers, including lymphoma, leukemia, ovarian, colorectal, pancreatic, and bone cancers.40 It works by adhering to monoclonal antibodies, which in turn bind to cancer cells and kill them via intense β-radiation from the yttrium-90 (see Monoclonal antibody therapy).61
Needles made of yttrium-90, which can cut more precisely than scalpels, have been used to sever pain-transmitting nerves in the spinal cord,27 and yttrium-90 is also used to carry out radionuclide synovectomy in the treatment of inflamed joints, especially knees, in sufferers of conditions such as rheumatoid arthritis.62
A neodymium-doped yttrium-aluminium-garnet laser has been used in an experimental, robot-assisted radical prostatectomy in canines in an attempt to reduce collateral nerve and tissue damage,63 whilst the erbium-doped ones are starting to be used in cosmetic skin resurfacing.5
Superconductors
YBCO superconductor
Yttrium was used in the yttrium barium copper oxide (YBa2Cu3O7, aka 'YBCO' or '1-2-3') superconductor developed at the University of Alabama and the University of Houston in 1987.36 This superconductor operated at 93 K, notable because this is above liquid nitrogen's boiling point (77.1 K).36 As the price of liquid nitrogen is lower than that of liquid helium, which has to be used for the metallic superconductors, the operating costs would decrease.
The actual superconducting material is often written as YBa2Cu3O7–d, where d must be less than 0.7 if the material is to be superconducting. The reason for this is still not clear, but it is known that the vacancies occur only in certain places in the crystal, the copper oxide planes and chains, giving rise to a peculiar oxidation state of the copper atoms, which somehow leads to the superconducting behavior.
The theory of low temperature superconductivity has been well understood since the so-called BCS theory was put forward in 1957. It is based on a peculiarity of the interaction between 2 electrons in a crystal lattice. However, BCS theory does not explain high temperature superconductivity, and its precise mechanism is still a mystery. What is known is that the composition of the copper-oxide materials has to be precisely controlled if superconductivity is to occur.64
The created material was a black and green, multi-crystal, multi-phase mineral. Researchers are studying a class of materials known as perovskites that are alternative mixtures of these elements, hoping to eventually develop a practical high-temperature superconductor.44
Precautions
Water soluble compounds of yttrium are considered mildly toxic, while its insoluble compounds are non-toxic.40 In experiments on animals, yttrium and its compounds caused lung and liver damage, though toxicity varies with different yttrium compounds. In rats, inhalation of yttrium citrate caused pulmonary edema and dyspnea, while inhalation of yttrium chloride caused liver edema, pleural effusions, and pulmonary hyperemia.6
Exposure to yttrium compounds in humans may cause lung disease.6 Workers exposed to airborne yttrium europium vanadate dust experienced mild eye, skin, and upper respiratory tract irritation—though this may have been caused by the vanadium content rather than the yttrium.6 Acute exposure to yttrium compounds can cause shortness of breath, coughing, chest pain, and cyanosis.6 NIOSH recommends a time-weighted average limit of 1 mg/m3 and an IDLH of 500 mg/m3.65 Yttrium dust is flammable.6
Notes
^ Essentially, a neutron becomes a proton while an electron and antineutrino are emitted.
^ This stability is thought to result from very low neutron cross-sections (Greenwood 1997, pp. 12–13). Electron emission of isotopes with those mass numbers is simply less prevalent due to this stability, resulting in them having a higher abundance.
^ Metastable isomers have higher-than-normal energy states than the corresponding non-excited nucleus and these states last until a gamma ray or conversion electron is emitted from the isomer. They are designated by an 'm' being placed next to the isotope's mass number.
^ Ytterbite was named after the village it was discovered near, plus the -ite ending to indicate it was a mineral.
^ Stwertka 1998, p. 115 says that the identification occurred in 1789 but is silent on when the announcement was made. Van der Krogt 2005 cites the original publication, with the year 1794, by Gadolin.
^ Earths were given an -a ending and new elements are normally given an -ium ending
^ Tc for YBCO is 93 K and the boiling point of nitrogen is 77 K.
^ Emsley 2001, p. 497 says that "Yttrium oxysulfide, doped with europium (III), is used as the standard red component in colour televisions".
References
^ Magnetic susceptibility of the elements and inorganic compounds, in Handbook of Chemistry and Physics 81st edition, CRC press.
^ a b IUPAC contributors (2005). Edited by N G Connelly and T Damhus (with R M Hartshorn and A T Hutton). ed (PDF). Nomenclature of Inorganic Chemistry: IUPAC Recommendations 2005. RSC Publishing. pp. 51. ISBN 0-85404-438-8. http://www.iupac.org/publications/books/rbook/Red_Book_2005.pdf. Retrieved 2007-12-17.
^ a b c d e Van der Krogt 2005
^ a b c d e f g h i j k l m n CRC contributors (2007–2008). "Yttrium". In Lide, David R.. CRC Handbook of Chemistry and Physics. 4. New York: CRC Press. p. 41. ISBN 978-0-8493-0488-0.
^ a b c d e f g h Cotton, Simon A. (2006-03-15). Scandium, Yttrium & the Lanthanides: Inorganic & Coordination Chemistry. doi:10.1002/0470862106.ia211.
^ a b c d e f g OSHA contributors (2007-01-11). "Occupational Safety and Health Guideline for Yttrium and Compounds". United States Occupational Safety and Health Administration. http://www.osha.gov/SLTC/healthguidelines/yttriumandcompounds/recognition.html. Retrieved 2008-08-03. (public domain text)
^ a b Greenwood 1997, p. 946
^ a b Hammond, C. R.. "Yttrium" (pdf). The Elements. Fermi National Accelerator Laboratory. pp. 4–33. ISBN 0049100815. Archived from the original on June 26, 2008. http://web.archive.org/web/20080626181434/http://www-d0.fnal.gov/hardware/cal/lvps_info/engineering/elements.pdf. Retrieved 2008-08-26.
^ a b c d e f g h i j Daane 1968, p. 817
^ a b Emsley 2001, p. 498
^ Daane 1968, p. 810
^ Daane 1968, p. 815
^ Greenwood 1997, p. 945
^ Greenwood 1997, p. 1234
^ Greenwood 1997, p. 948
^ Greenwood 1997, p. 947
^ Cloke, F. Geoffrey N. (1993). "Zero Oxidation State Compounds of Scandium, Yttrium, and the Lanthanides". Chem. Soc. Rev. 22: 17–24. doi:10.1039/CS9932200017.
^ a b c Schumann, Herbert; Fedushkin, Igor L. (2006). "Scandium, Yttrium & The Lanthanides: Organometallic Chemistry". Encyclopedia of Inorganic Chemistry. doi:10.1002/0470862106.ia212.
^ Nikolai B., Mikheev; Auerman, L N; Rumer, Igor A; Kamenskaya, Alla N; Kazakevich, M Z (1992). "The anomalous stabilisation of the oxidation state 2+ of lanthanides and actinides". Russian Chemical Reviews 61 (10): 990–998. doi:10.1070/RC1992v061n10ABEH001011.
^ Kang, Weekyung; E. R. Bernstein (2005). "Formation of Yttrium Oxide Clusters Using Pulsed Laser Vaporization". Bull. Korean Chem. Soc. 26 (2): 345–348. doi:10.5012/bkcs.2005.26.2.345. http://newjournal.kcsnet.or.kr/main/j_search/j_download.htm?code=B050237.
^ Turner, Jr., Francis M.; Berolzheimer, Daniel D.; Cutter, William P.; Helfrich, John (1920). The Condensed Chemical Dictionary. New York: Chemical Catalog Company. pp. 492. http://books.google.com/?id=y8y0XE0nsYEC&pg=PA492&dq=%22Yttrium+chloride%22. Retrieved 2008-08-12.
^ Spencer, James F. (1919). The Metals of the Rare Earths. New York: Longmans, Green, and Co. pp. 135. http://books.google.com/?id=W2zxN_FLQm8C&pg=PA135&dq=%22Yttrium+chloride%22. Retrieved 2008-08-12.
^ Pack, Andreas; Sara S. Russell, J. Michael G. Shelley and Mark van Zuilen (2007). "Geo- and cosmochemistry of the twin elements yttrium and holmium". Geochimica et Cosmochimica Acta 71 (18): 4592–4608. doi:10.1016/j.gca.2007.07.010.
^ a b c Greenwood 1997, pp. 12–13
^ a b c d e f g h NNDC contributors (2008). "Chart of Nuclides". In Alejandro A. Sonzogni (Database Manager). Upton, New York: National Nuclear Data Center, Brookhaven National Laboratory. http://www.nndc.bnl.gov/chart/. Retrieved 2008-09-13.
^ a b Audi, Georges (2003). "The NUBASE Evaluation of Nuclear and Decay Properties". Nuclear Physics A (Atomic Mass Data Center) 729: 3–128. doi:10.1016/j.nuclphysa.2003.11.001.
^ a b Emsley 2001, p. 496
^ Gadolin 1794
^ Greenwood 1997, p. 944
^ Carl Gustav, Mosander (1843). "Ueber die das Cerium begleitenden neuen Metalle Lathanium und Didymium, so wie über die mit der Yttererde vorkommen-den neuen Metalle Erbium und Terbium" (in German). Annalen der Physik und Chemie 60 (2): 297–315. doi:10.1002/andp.18431361008.
^ Britannica contributors (2005). Encyclopædia Britannica, Inc. , "ytterbium"
^ a b Stwertka 1998, p. 115
^ Heiserman, David L. (1992). "Element 39: Yttrium". Exploring Chemical Elements and their Compounds. New York: TAB Books. pp. 150–152. ISBN 0-8306-3018-X.
^ Wöhler, Friedrich (1828). "Ueber das Beryllium und Yttrium". Annalen der Physik 89 (8): 577–582. doi:10.1002/andp.18280890805.
^ Coplen, Tyler B.; Peiser, H. S. (1998). "History of the Recommended Atomic-Weight Values from 1882 to 1997: A Comparison of Differences from Current Values to the Estimated Uncertainties of Earlier Values (Technical Report)". Pure Appl. Chem. (IUPAC's Inorganic Chemistry Division Commission on Atomic Weights and Isotopic Abundances) 70 (1): 237–257. doi:10.1351/pac199870010237.
^ a b c d Wu, M. K.; Ashburn, J. R.; Torng, C. J.; Hor, P. H.; Meng, R. L.; Gao, L.; Huang, Z. J.; Wang, Y. Q. and Chu, C. W. (1987). "Superconductivity at 93 K in a New Mixed-Phase Y-Ba-Cu-O Compound System at Ambient Pressure". Physical Review Letters 58 (9): 908–910. doi:10.1103/PhysRevLett.58.908. PMID 10035069.
^ Lenntech contributors. "yttrium". Lenntech. http://www.lenntech.com/periodic-chart-elements/y-en.htm. Retrieved 2008-08-26.
^ a b c d e f Emsley 2001, p. 497
^ MacDonald, N. S.; R. E. Nusbaum, G. V. Alexander (1952). "The Skeletal Deposition of Yttrium" (PDF). Journal of Biological Chemistry 195 (2): 837–841. PMID 14946195. http://www.jbc.org/cgi/reprint/195/2/837.pdf.
^ a b c d e Emsley 2001, p. 495
^ a b c d e f g h i j Morteani, Giulio (1991). "The rare earths; their minerals, production and technical use". European Journal of Mineralogy; August; v.; no.; p. 3 (4): 641–650. http://eurjmin.geoscienceworld.org/cgi/content/abstract/3/4/641.
^ Kanazawa, Yasuo; Masaharu Kamitani (2006). "Rare earth minerals and resources in the world". Journal of Alloys and Compounds 408–412: 1339–1343. doi:10.1016/j.jallcom.2005.04.033.
^ a b c d e Naumov, A. V. (2008). "Review of the World Market of Rare-Earth Metals". Russian Journal of Non-Ferrous Metals 49 (1): 14–22. doi:10.1007/s11981-008-1004-6 (inactive 2010-03-20).
^ a b c Stwertka 1998, p. 116
^ Zheng, Zuoping; Lin Chuanxian (1996). "The behaviour of rare-earth elements (REE) during weathering of granites in southern Guangxi, China". Chinese Journal of Geochemistry 15 (4): 344–352. doi:10.1007/BF02867008.
^ a b Holleman, Arnold F.; Egon Wiberg, Nils Wiberg (1985). Lehrbuch der Anorganischen Chemie (91–100 ed.). Walter de Gruyter. pp. 1056–1057. ISBN 3-11-007511-3.
^ a b Daane 1968, p. 818
^ US patent 5935888, "Porous silicon nitride with rodlike grains oriented", issued 1999-08-10, assigned to Agency Ind Science Techn (JP) and Fine Ceramics Research Ass (JP)
^ Carley, Larry (December 2000). "Spark Plugs: What's Next After Platinum?". Counterman (Babcox). Archived from the original on 2008-05-01. http://web.archive.org/web/20080501064053/http://www.babcox.com/editorial/cm/cm120032.htm. Retrieved 2008-09-07.
^ US patent 4533317, Addison, Gilbert J., "Yttrium oxide mantles for fuel-burning lanterns", issued 1985-08-06, assigned to The Coleman Company, Inc.
^ Jaffe, H.W. (1951). "The role of yttrium and other minor elements in the garnet group" (pdf). American Mineralogist: 133–155. http://www.minsocam.org/ammin/AM36/AM36_133.pdf. Retrieved 2008-08-26.
^ Vajargah, S. Hosseini; Madaahhosseini, H; Nemati, Z (2007). "Preparation and characterization of yttrium iron garnet (YIG) nanocrystalline powders by auto-combustion of nitrate-citrate gel". Journal of Alloys and Compounds 430 (1–2): 339–343. doi:10.1016/j.jallcom.2006.05.023.
^ US patent 6409938, Comanzo Holly Ann, "Aluminum fluoride flux synthesis method for producing cerium doped YAG", issued 2002-06-25, assigned to General Electrics
^ GIA contributors (1995). GIA Gem Reference Guide. Gemological Institute of America. ISBN 0-87311-019-6.
^ Kiss, Z. J.; Pressley, R. J. (October 1966). "Crystalline solid lasers". Proceedings of the IEEE. 54. IEEE. pp. 1236–1248. issn: 0018-9219. http://ieeexplore.ieee.org/xpls/abs_all.jsp?arnumber=1447042. Retrieved 2008-08-16.
^ Kong, J.; Tang, D. Y.; Zhao, B.; Lu, J.; Ueda, K.; Yagi, H. and Yanagitani, T. (2005). "9.2-W diode-pumped Yb:Y2O3 ceramic laser". Applied Physics Letters 86: 116. doi:10.1063/1.1914958.
^ Tokurakawa, M.; Takaichi, K.; Shirakawa, A.; Ueda, K.; Yagi, H.; Yanagitani, T. and Kaminskii, A. A. (2007). "Diode-pumped 188 fs mode-locked Yb3+:Y2O3 ceramic laser". Applied Physics Letters 90: 071101. doi:10.1063/1.2476385.
^ Golubović, Aleksandar V.; Nikolić, Slobodanka N.; Gajić, Radoš; Đurić, Stevan; Valčić, Andreja (2002). "The growth of Nd: YAG single crystals". Journal of the Serbian Chemical Society 67 (4): 91–300. doi:10.2298/JSC0204291G.
^ PIDC contributors. Rare Earth metals & compounds. Pacific Industrial Development Corporation. http://www.pidc.com/products_imaterials_oth.html. Retrieved 2008-08-26.
^ Berg, Jessica. "Cubic Zirconia". Emporia State University. http://www.emporia.edu/earthsci/amber/go340/students/berg/cz.html. Retrieved 2008-08-26.
^ Adams, Gregory P.; Shaller, Calvin C.; Dadachova, Ekaterina; Simmons, Heidi H.; Horak, Eva M.; Tesfaye, Abohawariat; Klein-Szanto, Andres J. P.; Marks, James D.; Brechbiel, Martin W.; Weiner, Louis M. (2004). "A Single Treatment of Yttrium-90-labeled CHX-A–C6.5 Diabody Inhibits the Growth of Established Human Tumor Xenografts in Immunodeficient Mice". Cancer Research 64 (17): 6200–6206. doi:10.1158/0008-5472.CAN-03-2382. PMID 15342405.
^ Fischer, M.; Modder, G. (2002). "Radionuclide therapy of inflammatory joint diseases". Nuclear Medicine Communications 23 (9): 829–831. doi:10.1097/00006231-200209000-00003. PMID 12195084.
^ Gianduzzo, Troy; Colombo Jr, Jose R.; Haber, Georges-Pascal; Hafron, Jason; Magi-Galluzzi, Cristina; Aron, Monish; Gill, Inderbir S.; Kaouk, Jihad H. (2008). "Laser robotically assisted nerve-sparing radical prostatectomy: a pilot study of technical feasibility in the canine model". BJU International (Cleveland: Glickman Urological Institute) 102 (5): 598. doi:10.1111/j.1464-410X.2008.07708.x. PMID 18694410.
^ "Yttrium Barium Copper Oxide - YBCO". Imperial College. http://www.ch.ic.ac.uk/rzepa/mim/century/html/ybco_text.htm. Retrieved 2009-12-20.
^ NIOSH contributors (September 2005). "Yttrium". NIOSH Pocket Guide to Chemical Hazards. National Institute for Occupational Safety and Health. http://www.cdc.gov/niosh/npg/npgd0673.html. Retrieved 2008-08-03.
Bibliography
Daane, A. H. (1968). "Yttrium". In Hampel, Clifford A.. The Encyclopedia of the Chemical Elements. New York: Reinhold Book Corporation. pp. 810–821. LCCN 68-29938.
Emsley, John (2001). "Yttrium". Nature's Building Blocks: An A-Z Guide to the Elements. Oxford, England, UK: Oxford University Press. pp. 495–498. ISBN 0-19-850340-7.
Gadolin, Johan (1794). "Undersökning af en svart tung Stenart ifrån Ytterby Stenbrott i Roslagen.". Kongl. Vetenskaps Academiens Nya Handlingar 15: 137–155.
Greenwood, N. N.; Earnshaw, A. (1997). Chemistry of the Elements (2nd ed.). Oxford: Butterworth-Heinemann. ISBN 0-7506-3365-4.
Stwertka, Albert (1998). "Yttrium". Guide to the Elements (Revised ed.). Oxford University Press. pp. 115–116. ISBN 0-19-508083-1.
van der Krogt, Peter (2005-05-05). "39 Yttrium". Elementymology & Elements Multidict. http://elements.vanderkrogt.net/element.php?sym=Y. Retrieved 2008-08-06.
Further reading
US patent 5734166, Czirr John B., "Low-energy neutron detector based upon lithium lanthanide borate scintillators", issued 1998-03-31, assigned to Mission Support Inc
EPA contributors (2008-07-31). "Strontium: Health Effects of Strontium-90". US Environmental Protection Agency. http://www.epa.gov/rpdweb00/radionuclides/strontium.html#healtheffects. Retrieved 2008-08-26.
External links
Wikimedia Commons has media related to: Yttrium
Look up yttrium in Wiktionary, the free dictionary.
WebElements.com – Yttrium
v · d · e Periodic table
H
He
Li
Be
B
C
N
O
F
Ne
Na
Mg
Al
Si
P
S
Cl
Ar
K
Ca
Sc
Ti
V
Cr
Mn
Fe
Co
Ni
Cu
Zn
Ga
Ge
As
Se
Br
Kr
Rb
Sr
Y
Zr
Nb
Mo
Tc
Ru
Rh
Pd
Ag
Cd
In
Sn
Sb
Te
I
Xe
Cs
Ba
La
Ce
Pr
Nd
Pm
Sm
Eu
Gd
Tb
Dy
Ho
Er
Tm
Yb
Lu
Hf
Ta
W
Re
Os
Ir
Pt
Au
Hg
Tl
Pb
Bi
Po
At
Rn
Fr
Ra
Ac
Th
Pa
U
Np
Pu
Am
Cm
Bk
Cf
Es
Fm
Md
No
Lr
Rf
Db
Sg
Bh
Hs
Mt
Ds
Rg
Cn
Uut
Uuq
Uup
Uuh
Uus
Uuo
Alkali metals
Alkaline earth metals
Lanthanides
Actinides
Transition metals
Other metals
Metalloids
Other nonmetals
Halogens
Noble gases
Unknown chem. properties
Large version
v · d · e Yttrium compounds
Glidewell Laboratories Announces Nanozirconia Technology Breakthrough
Glidewell Dental Lab's Continued Research and Development Efforts Lead to New Ceramic Nanotechnology (PRWeb February 15, 2011) Read the full story at http://www.prweb.com/releases/glidewell-dental-lab/nanozirconia-technology/prweb5060534.htm
Yttrium
Information about Yttrium - general properties, discovery, states, energies, appearance and characteristics.
YAs · YB6 · YBr3 · YCl3 · YF3 · YN · YPO4 · YSb · YVO4 · Y2O3 · Y2S3
Winston Chung Commits to a $10 Million Gift to UC Riverside
Prominent Chinese businessman announces his commitment to provide an endowment supporting UC Riverside’s Bourns College of Engineering (PRWeb January 28, 2011) Read the full story at http://www.prweb.com/releases/2011/1/prweb8098389.htm
yttrium - Wiktionary
yttrium (uncountable) Wikipedia has an article on: Yttrium. Wikipedia. A metallic chemical ... yttrium aluminium garnet, yttrium aluminum garnet. yttrium anhydrous ...
YAs · YB6 · YBr3 · YCl3 · YF3 · YN · YPO4 · YSb · YVO4 · Y2O3 · Y2S3
Winston Chung Commits to a $10 Million Gift to UC Riverside
RIVERSIDE, Calif. (www.ucr.edu) -- The University of California, Riverside announced Monday that Winston Chung, a Chinese battery technology scientist, inventor and entrepreneur, has expressed his intent to give $10 million to support clean battery power, solar energy and sustainable transportation research at the Bourns College of Engineering.
Yttrium - CreationWiki, the encyclopedia of creation science
Yttrium is a chemical element which is part of the series of elements known as transition metals. ... Yttrium is a moderately abundant element found in Earth's crust. ...
YAs · YB6 · YBr3 · YCl3 · YF3 · YN · YPO4 · YSb · YVO4 · Y2O3 · Y2S3
Spectrum Pharmaceuticals Submits Data to FDA in Support of Bioscan Removal for ZEVALIN®
IRVINE, Calif.--(BUSINESS WIRE)--SPECTRUM PHARMACEUTICALS SUBMITS DATA TO FDA IN SUPPORT OF BIOSCAN REMOVAL FOR ZEVALIN®
yttrium - definition of yttrium by the Free Online Dictionary ...
Translations of yttrium. yttrium synonyms, yttrium antonyms. Information about yttrium in the free online English dictionary and encyclopedia. yttrium ...
YAs · YB6 · YBr3 · YCl3 · YF3 · YN · YPO4 · YSb · YVO4 · Y2O3 · Y2S3
Bolero Acquires the "Charge" REE Prospect in Northern BC
VANCOUVER, BC--(Marketwire - February 3, 2011) -



















