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1  with tetrahedral coordination preference to tellurium.
2 oichiometric amount of dissolved selenium or tellurium.
3                                              Tellurium, a byproduct of copper refining, which is crit
4 terials (particularly the germanium antimony tellurium alloy Ge2Sb2Te5) exploited the reversible chan
5 ility studies of AdoMet and its selenium and tellurium analogues, Se-adenosyl-L-selenomethionine and
6 lly important oxyanions of selenium (Se) and tellurium and another Se-containing anion, selenocyanate
7 g micrometer-thick layers of polystyrene and tellurium and demonstrates omnidirectional reflection ov
8    Here we report the synthesis of colloidal tellurium and selenium nanostructures using thiolated ch
9 rbon, nitrogen, oxygen, sulfur, selenium and tellurium are reported, and no multiple bonds to phospho
10 ons of a diborene with elemental selenium or tellurium are shown to afford a diboraselenirane or dibo
11 rylium nuclei included sulfur, selenium, and tellurium at the 1-position.
12 plex combining a hypervalent four-coordinate tellurium atom and an octahedral platinum center.
13  up a wide range of future studies involving tellurium-based polyheterocycles.
14 kyne, affording access to a series of 11 new tellurium-boron heterocycles.
15                       When Br(2) adds to the tellurium center the absorption spectrum shifts to a low
16 ase in the electron releasing ability of the tellurium center upon switching from an eight-electron c
17 nd calculated electrostatic potential at the tellurium center.
18 r an understanding of the unique features of tellurium chemistry with an emphasis on hypervalency, th
19  explored the effect of the immunomodulating tellurium compound ammonium trichloro (dioxoethylene-o,o
20 ecifically, we demonstrate that the nontoxic tellurium compound AS101, currently being evaluated in c
21 dppp)(2) (4), the first metalated hexavalent tellurium compound, which is formed by reaction of 2 wit
22 mply that the structures and reactivities of tellurium compounds can be extrapolated from the behavio
23 ionization energies of sulfur, selenium, and tellurium compounds has been determined by charge-transf
24 rging importance of the unique properties of tellurium compounds is apparent from the variety of thei
25                                      Two new tellurium-containing nitrides were grown from reactions
26 tructure of 1,8-peri-substituted naphthalene tellurium derivatives.
27                                              Tellurium-derived cuprate organometallics offered an eff
28                       For the atomization of tellurium directly from a solid nickel alloy, and the at
29                We achieved this goal in iron tellurium (Fe(1+ y)Te), the nonsuperconducting parent co
30 red-shift in absorption upon substitution of tellurium for sulfur.
31 .6 at 923 K, the highest ever reported for a tellurium-free chalcogenide.
32 , the DNA duplex modified with electron-rich tellurium functionality showed strong topographic and cu
33 ntly, the presence of a sulfur, selenium, or tellurium heteroatom in the molecules had no predictable
34                  The scant attention paid to tellurium in both inorganic and organic chemistry textbo
35 d the direct determination of phosphorus and tellurium in nickel alloys and of cobalt in glass.
36 xcellent solubility of sulfur, selenium, and tellurium in phosphonium ionic liquids promotes fast rea
37  that the atomic substitution from sulfur to tellurium increases electronic coupling to decrease the
38 ies of hexagonal nanostructured platinum/tin/tellurium inorganic/surfactant composites.
39                            Slow oxidation of tellurium ions in cadmium telluride (CdTe) nanoparticles
40                                    Elemental tellurium may be recovered and reused.
41                                   The chiral tellurium nanostructures are transformed into chiral gol
42 The synthesis conditions are tuned to obtain tellurium nanostructures with chiral shapes and large op
43 work-engaged synthesis route based on porous tellurium nanotubes as a sacrificial template for hierar
44                                              Tellurium-nanowire-coated glassy carbon electrodes (TNGC
45  molecular species from one-dimensional (1D) tellurium nanowires (Te NWs) has been achieved at 1 V.
46 TNGCEs were prepared by direct deposition of tellurium nanowires, 600 +/- 150 nm in length and 16 +/-
47 de ferroelectrics, a thin frost of elemental tellurium, or a plating of magnetite or pyrites.
48                    Chemical dissimilarity of tellurium oxide with silica glass increases phase separa
49 (0)) from aqueous streams containing soluble tellurium oxyanions, tellurate (Te(VI)), and tellurite (
50 genomes, including TerC and TerD involved in tellurium resistance.
51 e of common Allium fistulosum to mercury and tellurium salts under ambient conditions resulted in the
52 mellar patterns in electrodeposited selenium-tellurium (Se-Te) alloy films grown under noncoherent, u
53 2 with M = (tungsten or molybdenum) and X = (tellurium, selenium, or sulfur).
54 us to explicitly study sulfur to selenium to tellurium substitution in D-A copolymers for the first t
55                         However, even though tellurium substitution increases electronic dispersion v
56 cuses on the microbial recovery of elemental tellurium (Te(0)) from aqueous streams containing solubl
57 ally and then fed a diet containing metallic tellurium (Te) from P20 to P27 to induce demyelination.
58 volatile elements sulfur (S), selenium (Se), tellurium (Te), and antimony (Sb) in the silicate Moon c
59 orresponding bromotocopherols, reaction with tellurium tetrachloride and reductive workup.
60 ption and dissociation of O2 , especially at tellurium vacancy sites.
61 le unit is varied from sulfur to selenium to tellurium, which allows us to explicitly study sulfur to
62 ctivity by substitution of a small amount of tellurium with isoelectronic sulfur.
63 T-m materials (LAST for Lead Antimony Silver Tellurium) with different m values at the atomic as well

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