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1

Mammadov, El Sh. "SELENOLANES, SELENATRANS AND ESTERS OF SELENIC ACID." Azerbaijan Chemical Journal, no. 4 (December 8, 2022): 95–101. http://dx.doi.org/10.32737/0005-2531-2022-4-95-101.

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It is known that selenic acid and selenium dioxide act as oxidizing agents in reactions with α-oxides when heated. The proposed paper presents data on the synthesis of organoselenium compounds based on reactions of α-oxides with selenic acid and its anhydride, where the latter act as selenation agents. It was found that in the presence of catalytic amounts of boron trifluoride esterate in the reactions of oxiranes with acid the oxirane ring opens both according to the rule and against the Krasussky rule with the formation of a mixture of α- and β- isomers of selenic acid esters. In contrast to
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2

Tang, Heqing, Akira Kitani, and Masaru Shiotani. "Electrochemical Formation of Polyaniline in Selenic Acid." Journal of The Electrochemical Society 143, no. 10 (1996): 3079–82. http://dx.doi.org/10.1149/1.1837167.

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3

Borah, Sangkha, and P. Padma Kumar. "Ab initio molecular dynamics investigation of structural, dynamic and spectroscopic aspects of Se(vi) species in the aqueous environment." Physical Chemistry Chemical Physics 18, no. 21 (2016): 14561–68. http://dx.doi.org/10.1039/c6cp01835a.

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Microscopic investigation of selenic acid in aqueous environment is carried out. Hydrogen bonding and spectroscopic signatures of HSeO<sub>4</sub><sup>−</sup>and SeO<sub>4</sub><sup>2−</sup>species are discussed.
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4

Erfany-Far, H., H. Fuess, and D. Gregson. "Single-crystal neutron diffraction study of hydrogen bonding in selenic acid." Acta Crystallographica Section C Crystal Structure Communications 43, no. 3 (1987): 395–97. http://dx.doi.org/10.1107/s0108270187095623.

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5

Sadykov, A. I., S. E. Kushnir, I. V. Roslyakov, A. E. Baranchikov, and K. S. Napolskii. "Selenic acid anodizing of aluminium for preparation of 1D photonic crystals." Electrochemistry Communications 100 (March 2019): 104–7. http://dx.doi.org/10.1016/j.elecom.2019.01.027.

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6

Kikuchi, Tatsuya, Osamu Nishinaga, Shungo Natsui, and Ryosuke O. Suzuki. "Self-Ordering Behavior of Anodic Porous Alumina via Selenic Acid Anodizing." Electrochimica Acta 137 (August 2014): 728–35. http://dx.doi.org/10.1016/j.electacta.2014.06.078.

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7

Němec, I., and Z. Mička. "FTIR and FT Raman study of l-leucine–selenic acid addition compound." Journal of Molecular Structure 563-564 (May 2001): 295–99. http://dx.doi.org/10.1016/s0022-2860(00)00789-4.

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8

Gordeeva, Elena O., Ilya V. Roslyakov, and Kirill S. Napolskii. "Aluminium anodizing in selenic acid: electrochemical behaviour, porous structure, and ordering regimes." Electrochimica Acta 307 (June 2019): 13–19. http://dx.doi.org/10.1016/j.electacta.2019.03.098.

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9

Baran, J., A. J. Barnes, M. K. Marchewka, A. Pietraszko, and H. Ratajczak. "Structure and vibrational spectra of the bis(betaine)-selenic acid molecular crystal." Journal of Molecular Structure 416, no. 1-3 (1997): 33–42. http://dx.doi.org/10.1016/s0022-2860(97)00073-2.

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10

Roslyakov, I. V., N. A. Shirin, P. V. Evdokimov, et al. "High-temperature annealing of porous anodic aluminium oxide prepared in selenic acid electrolyte." Surface and Coatings Technology 433 (March 2022): 128080. http://dx.doi.org/10.1016/j.surfcoat.2022.128080.

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11

Che, Yunxia, Jimin Zheng, Jianmin Hao, and Lianqing Chu. "X-ray powder diffraction analysis of adducts triglycine fluoroberyllic acid and triglycine selenic acid for pyroelectric application." Powder Diffraction 16, no. 3 (2001): 167–69. http://dx.doi.org/10.1154/1.1343524.

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Two adducts (NH2CH2COOH)3⋅H2BeF4(TGFb) and (NH2CH2COOH)3⋅H2SeO4(TGSe) were obtained and characterized by X-ray powder diffraction. The samples were indexed using the TREOR program [Werner, Z. Kristallogr. Kristallogeom. Kristallphys. Kristallchem. 120, 375–387 (1964)] on a monoclinic unit cell. The lattice parameters of adducts TGFb and TGSe were refined by a least-squares method using the Lattice Constant Refinement Program of the Rikagu software. The refined lattice parameters are a=9.1589(9) Å, b=12.6204(13) Å, c=5.6966(8) Å, β=105.451(9)° for TGFb. The Smith and Snyder figure [Smith and Sn
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12

Nowak, J., K. Kaklewski, and D. Klódka. "Influence of various concentrations of selenic acid (IV) on the activity of soil enzymes." Science of The Total Environment 291, no. 1-3 (2002): 105–10. http://dx.doi.org/10.1016/s0048-9697(01)01072-5.

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13

Nazarkina, Y., K. Kamnev, A. Dronov, A. Dudin, A. Pavlov, and S. Gavrilov. "Features of Porous Anodic Alumina Growth in Galvanostatic Regime in Selenic Acid Based Electrolyte." Electrochimica Acta 231 (March 2017): 327–35. http://dx.doi.org/10.1016/j.electacta.2017.02.049.

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14

Akiya, Shunta, Tatsuya Kikuchi, Shungo Natsui, and Ryosuke O. Suzuki. "Optimum Exploration for the Self-Ordering of Anodic Porous Alumina Formed via Selenic Acid Anodizing." Journal of The Electrochemical Society 162, no. 10 (2015): E244—E250. http://dx.doi.org/10.1149/2.0391510jes.

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15

Pogorzelec-Glaser, Katarzyna, Adam Rachocki, Paweł Ławniczak, Andrzej Łapiński, and Jadwiga Tritt-Goc. "Synthesis and characterization of a new proton-conducting material based on imidazole and selenic acid." Solid State Ionics 227 (October 2012): 96–101. http://dx.doi.org/10.1016/j.ssi.2012.09.021.

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16

Krügermann, Ina, and Mathias S. Wickleder. "Crystal Structure and Thermal Behaviour of Er2(SeO4)3 · 8H2O." Zeitschrift für Naturforschung B 59, no. 9 (2004): 958–62. http://dx.doi.org/10.1515/znb-2004-0902.

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Single crystals of Er2(SeO4)3 ・ 8H2O were obtained by dissolving Er2O3 in selenic acid. The selenate crystallizes in the monoclinic space group C2/c (Z = 4, a = 1372.8(2), b = 687.51(7), c = 1860.2(3) pm, β = 101.85(2)◦, Rall = 0.0518) and contains the Er3+ ions in eightfold coordination of oxygen atoms that belong to two crystallographically different SeO42− ions and to four H2O molecules. According to DTA/TG measurements and temperature dependent powder diffraction data, Er2(SeO4)3 ・8H2O decomposes in several steps yielding finally Er2O3. Er2(SeO4)3 and Er2(SeO3)3 could be identified as inte
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17

Zhang, Lin, Chengjie Lu, Fei Ye, et al. "Selenic Acid Etching Assisted Vacancy Engineering for Designing Highly Active Electrocatalysts toward the Oxygen Evolution Reaction." Advanced Materials 33, no. 14 (2021): 2007523. http://dx.doi.org/10.1002/adma.202007523.

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18

Nazarkina, Yulia, Sergei Gavrilov, Herman Terryn, Manuela Petrova, and Jon Ustarroz. "Investigation of the Ordering of Porous Anodic Alumina Formed by Anodization of Aluminum in Selenic Acid." Journal of The Electrochemical Society 162, no. 9 (2015): E166—E172. http://dx.doi.org/10.1149/2.0571509jes.

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19

Siidra, Oleg I., Evgeny V. Nazarchuk, Dmitry O. Charkin, et al. "Open-framework sodium uranyl selenate and sodium uranyl sulfate with protonated morpholino-N-acetic acid." Zeitschrift für Kristallographie - Crystalline Materials 234, no. 2 (2019): 109–18. http://dx.doi.org/10.1515/zkri-2018-2103.

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Abstract The reaction of sodium N-morpholine acetate with selenic and sulfuric acid and uranyl nitrate results in the formation of two novel open-framework compounds, |Na(Hmfa)|[(UO2)2(SeO4)3(H2O)](H2O)2 (NaUSe) and [Na2(SO3OH)(Hmfa)]|(UO2)(SO4)2| (NaUS), respectively. Despite identical synthetic procedures, sulfate structure dramatically differs from selenate compound. Their common feature is an open-framework featuring two-dimensional system of channels occupied by protonated morpholino-N-acetic acid species. Coordination of Na atoms is different. In NaUSe, [(UO2)2 (SeO4)3(H2O)]2− layers are
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20

Kushnir, Sergey E., Nina A. Sapoletova, Ilya V. Roslyakov, and Kirill S. Napolskii. "One-Dimensional Photonic Crystals with Nonbranched Pores Prepared via Phosphorous Acid Anodizing of Aluminium." Nanomaterials 12, no. 9 (2022): 1548. http://dx.doi.org/10.3390/nano12091548.

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One-dimensional photonic crystals (1D PhCs) obtained by aluminium anodizing under oscillating conditions are promising materials with structure-dependent optical properties. Electrolytes based on sulphuric, oxalic, and selenic acids have been utilized for the preparation of anodic aluminium oxide (AAO) 1D PhCs with sub-100-nm pore diameter. AAO films with larger pores can be obtained by anodizing in phosphorous acid at high voltages. Here, for the first time, anodizing in phosphorous acid is applied for the preparation of AAO 1D PhCs with nonbranched macropores. The sine wave profile of anodiz
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21

Pankratov, Alexei N., Nikolay A. Bychkov, and Olga M. Tsivileva. "Hydrogen-Bonded Interactions in the Systems L-Cysteine - H2SeO3 and L-Cysteine -H2SeO4." International Journal of Chemoinformatics and Chemical Engineering 1, no. 2 (2011): 66–76. http://dx.doi.org/10.4018/ijcce.2011070105.

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Using the density functional theory method at the B3LYP/6-31G(d,p) level of theory, the formation of hydrogen-bonded complexes of L-cysteine with selenious and selenic acids has been studied. In both cases of selenium-containing acids, the complexes occur preferably by cysteine carboxylic group, therewith the enthalpy of formation values consist from –19 to –21 kcal/mol, and free energy from –6 to –9 kcal/mol. Probably, the initial act of interaction in the system hydroxyl-containing selenium compound - a-amino acid, proceeding with mutual orientation of the reactants molecules and intermolecu
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22

KASHIWA, Masami, Kazuaki TAKAHASHI, Shintaro NISHIMOTO, Michihiko IKE, and Masanori FUJITA. "Organisms utilization new technology research symposium ( 4th ). Separation of the new selenate reducing bacterium and its selenic acid reduction characteristics." Journal of Environmental Conservation Engineering 26, no. 4 (1997): 244–49. http://dx.doi.org/10.5956/jriet.26.244.

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23

Vlaev, Lyubomir, and Velyana Georgieva. "Temperature and Concentration Dependence of the Electrical Conductance, Diffusion, and Kinetics Parameters of the Ions in Aqueous Solutions of Sulfuric Acid, Selenic Acid, and Potassium Tellurate." Journal of Solution Chemistry 34, no. 8 (2005): 961–80. http://dx.doi.org/10.1007/s10953-005-6259-2.

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24

Wang, Chao, Guozhe Sui, Dongxuan Guo, Jinlong Li, Wenxin Guo, and Dong-Feng Chai. "A facile selenic acid etching strategy for designing selenium-doped NiCo2O4/C nanoprisms with hollow/porous structure for advanced asymmetrical supercapacitor." Journal of Energy Storage 50 (June 2022): 104714. http://dx.doi.org/10.1016/j.est.2022.104714.

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25

Tanaka, Masato, Daisuke Ariga, and Yoshio Takahashi. "Estimation of pKa of Selenic Acid by the Correlation of Experimental pKa Values with Those Estimated by DFT Calculation for Inorganic Oxoacids." Chemistry Letters 42, no. 8 (2013): 912–14. http://dx.doi.org/10.1246/cl.130289.

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26

DAHLEMS, T., and D. MOOTZ. "ChemInform Abstract: Crystal Structures of Acid Hydrates and Oxonium Salts. Part 36. Selenic Acid Tetrahydrate. Ionic as (H5O2)2SeO4 in an Orthorhombic as well as a Tetragonal Form." ChemInform 27, no. 48 (2010): no. http://dx.doi.org/10.1002/chin.199648006.

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27

Nazarchuk, Evgeny V., Dmitri O. Charkin, Dmitri V. Kozlov, Oleg I. Siidra, and Stepan N. Kalmykov. "Topological analysis of the layered uranyl compounds bearing slabs with UO2:TO4 ratio of 2:3." Radiochimica Acta 108, no. 4 (2020): 249–60. http://dx.doi.org/10.1515/ract-2019-3183.

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AbstractNine new templated uranyl sulfates and selenates, [(H9O4)2(H2O)][(UO2)2(SO4)3(H2O)2] (H9US), [(C5H7 NO)2(H2O)][(UO2)2(SeO4)3(H2O)2](H2O) (OUSe), [C6H6N3][H5O2] [(UO2)2(SeO4)3(H2O)] (BH5USe), [C6H6N3][H7O3][(UO2)2(SO4)3 (H2O)](H2O) (BH7US), [C6H16N][H5O2][(UO2)2(SeO4)3(H2O)] (TeH5USe), [C6H18N2][(UO2)2(SO4)3(H2O)] (TmUS), [H5O2]2 [(UO2)2(SeO4)3(H2O)](H2O) (H5USe-1), [H5O2]2[(UO2)2(SeO4)3 (H2O)2](H2O)9 (H5USe-2), and [C4H14N2][(UO2)2(SeO4)3(H2O)](H2O) (DmUSe) have been prepared by isothermal evaporation of aqueous solutions containing extra sulfuric or selenic acid. Their crystal structu
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28

Weil, Matthias. "Hydrothermal Single Crystal Growth and Crystal Structures of the Mercury(II) Selenates(VI) HgSeO4, HgSeO4·HgO and HgSeO4·2HgO." Zeitschrift für Naturforschung B 57, no. 9 (2002): 1043–50. http://dx.doi.org/10.1515/znb-2002-0911.

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Colourless single crystals of HgSeO4 were prepared under hydrothermal conditions by reacting yellow HgO in concentrated selenic acid at 250 °C (10 d); yellow crystals of HgSeO4 HgO and red-brown crystals of HgSeO4 2HgO were obtained during hydrolysis of the so prepared HgSeO4 in demineralized water at 200 °C (7 d). All crystal structures were solved and refined from single crystal diffractometer data sets. The structures of HgSeO4 and HgSeO4 2HgO are isotypic with the corresponding sulphates. They are based on [HgO7] polyhedra with a [4+3] coordination around the mercury atom and isolated SeO4
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29

Barati, Meisam, Mahdi Shabani, Masoumeh Jabbari, et al. "Antioxidant nutrients can increase high-dose Methotrexate efficacy in 4T1 breast tumor Model: An experimental study on Vitamin E Succinate and Methyl-selenic acid." International Immunopharmacology 110 (September 2022): 109011. http://dx.doi.org/10.1016/j.intimp.2022.109011.

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30

Li, Fangshi, Walter Goessler, and Kurt J. Irgolic. "Determination of trimethylselenonium iodide, selenomethionine, selenious acid, and selenic acid using high-performance liquid chromatography with on-line detection by inductively coupled plasma mass spectrometry or flame atomic absorption spectrometry." Journal of Chromatography A 830, no. 2 (1999): 337–44. http://dx.doi.org/10.1016/s0021-9673(98)00842-5.

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31

Rekhman, Zafar, Andrey Blinov, Alexey Gvozdenko, et al. "Synthesis and characterization of selenium nanoparticles stabilized with oxyethylated alkylphenol (neonol) for potential modification of fabric materials." PLOS ONE 19, no. 11 (2024): e0314208. http://dx.doi.org/10.1371/journal.pone.0314208.

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This work demonstrates the first time synthesis of selenium nanoparticles (Se NPs) stabilized with neonol. The synthesis method was optimized using a multifactorial experiment with three input parameters. The most stable sample had a radius of 15 nm and a ζ-potential of -36.76 mV. It was found that the optimal parameters for the synthesis of Se NPs stabilized with neonol are the following concentration values: 0.12 mol/L selenic acid, 0.095 mol/L neonol and 0.95 mol/L ascorbic acid. Quantum chemical modeling of Se-neonol molecular complex formation showed that interaction of Se with neonol occ
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32

Richtera, Lukas, Vojtech Jancik, Diego Martínez-Otero, et al. "Taming the Oxidative Power of SeO3 in 1,4-Dioxane, Isolation of Two New Isomers of Mixed-Valence Selenium Oxides, and Two Unprecedented Cyclic Esters of Selenic Acid." Inorganic Chemistry 53, no. 13 (2014): 6569–77. http://dx.doi.org/10.1021/ic500137z.

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33

H Gurlhosur, Dr Shrikrishna. "Investigating the Structural and Electronic Characteristics of a Novel Hybrid Material: Single Crystal Analysis and DFT Studies of a Compound Based on 2-Hydroxypyridine and Selenic Acid." INTERNATIONAL RESEARCH JOURNAL OF ENGINEERING & APPLIED SCIENCES 9, no. 1 (2021): 38–42. http://dx.doi.org/10.55083/irjeas.2021.v09i01007.

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A novel hybrid material, denoted as [(2-OH-pyH+)]2SeO4, has been skillfully synthesized using a precise slow evaporation technique, showcasing crystalline attributes within the monoclinic system. The compound adopts the centrosymmetric space group C2/c, revealing distinctive structural features. Comprehensive investigations into the molecular structure, vibrational spectra, and optical properties of [(2-OH-pyH+)]2SeO4 have been conducted through theoretical studies at the B3LYP/6–31 + G* level, providing valuable insights. This study significantly advances our understanding of the material’s p
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34

Kikuchi, Tatsuya, Mana Iwai, and Daiki Nakajima. "(Invited) Fabrication of Anodic Porous Alumina via Anodizing Aluminum in Novel Electrolyte Solutions." ECS Meeting Abstracts MA2024-02, no. 16 (2024): 1657. https://doi.org/10.1149/ma2024-02161657mtgabs.

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Anodizing aluminum in several appropriate acidic electrolyte solutions, such as sulfuric, dicarboxylic, phosphoric, and chromic acids, causes the formation of anodic porous alumina. The porous alumina film possesses vertical nanoscale pores in its structure, and is typically used for corrosion protection and nanostructure fabrication. Particularly, since the self-ordering behavior of nanoscale pores in the porous alumina film under the appropriate anodizing conditions was reported by Masuda et al. in 1995, the ordered porous alumina film is widely used for the fabrication of various nanomateri
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35

Zelyakh, Ya D., K. L. Timofeev, R. S. Voinkov, G. I. Maltsev, and V. A. Shunin. "Purification of process solutions from mercury by sorption." Izvestiya. Non-Ferrous Metallurgy, no. 1 (March 27, 2024): 5–13. http://dx.doi.org/10.17073/0021-3438-2024-1-5-13.

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At JSC «Uralelectromed», selenium-containing raw materials and industrial products are processed, resulting in solutions containing a mixture of mercury with concentrations as follows (g/dm3): 157–210 Se; 0.004–0.02 Hg; 0.15–0.20 Te; 2–3 As; 0.15–0.20 Sb; and 45–50 S. To produce branded selenium, the mercury concentration in the solution must be kept below 0.001 g/dm3. Various methods, such ashydrometallurgical and electrochemical processes, are known for mercury purification from solutions. JSC «Uralelectromed» has selected sorption technology for mercury removal using the weak-base macroporo
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36

Xiang, Wanwan, Gejiao Wang, Yuantao Wang, et al. "Paenibacillus selenii sp. nov., isolated from selenium mineral soil." International Journal of Systematic and Evolutionary Microbiology 64, Pt_8 (2014): 2662–67. http://dx.doi.org/10.1099/ijs.0.063701-0.

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Strain W126T, a Gram-reaction-positive, spore-forming, rod-shaped, facultatively anaerobic bacterium, motile by means of peritrichous flagella, was isolated from selenium mineral soil in Hubei province of China. 16S rRNA gene sequence analysis demonstrated that this isolate belonged to the genus Paenibacillus , with 97.9 % sequence similarity to Paenibacillus anaericanus MH21T, while compared with the other species of the genus Paenibacillus , the 16S rRNA gene sequence similarities were less than 96.0 %. DNA–DNA hybridization between strain W126T and Paenibacillus anaericanus DSM 15890T was 2
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37

Alberti, Milan, Ondrej Šedo, and Josef Havel. "Laser ablation generation of cluster ions from concentrated sulfuric and selenic acids." Rapid Communications in Mass Spectrometry 19, no. 10 (2005): 1339–42. http://dx.doi.org/10.1002/rcm.1931.

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38

S., C. LAVALE, and MANGLA DAVE (Miss). "Photometric and Amperometric Estimation of Trace Amount of Selenium and Tellurium." Journal Of Indian Chemical Society Vol. 66, Dec 1989 (1989): 914–15. https://doi.org/10.5281/zenodo.6199889.

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Chemical Research Laboratories, Government College,&nbsp;Betul-460 001 <em>Manuscript received 1 April 1987, revised 17 April&nbsp;1989,&nbsp;&nbsp;accepted 20 July&nbsp;1989</em> Photometric and Amperometric Estimation of Trace Amount of Selenium and Tellurium &nbsp; &nbsp;
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39

Czauderna, M., J. Kowalczyk, and K. A. Krajewska. "Influence of dietary selenium level on the concentration of conjugated linoleic acid isomers, other fatty acids and amino acids in the liver and femoral muscles of rats." Czech Journal of Animal Science 56, No. 2 (2011): 81–94. http://dx.doi.org/10.17221/55/2010-cjas.

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The purpose of the present study was to determine the influence of diets containing conjugated linoleic acid isomers (CLAmix) with or without low (&lt;sub&gt;L&lt;/sub&gt;Se) or high (&lt;sub&gt;H&lt;/sub&gt;Se) concentration of selenised yeast (SeY) on body weight gain (BWG), feed conversion efficiency (FCE), and concentrations of CLA isomers and other fatty acids (FA) in the liver and femoral muscle of rats. The investigation was performed on 48 female rats (Wistar, Hsd Brl Han: WIST), aged 8 weeks with an initial body weight of 195.7 &amp;plusmn; 0.8 g. After one week of submaintenance feed
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40

Ishii, Akihiko, Shogo Matsubayashi, Takeshi Takahashi, and Juzo Nakayama. "Preparation of a Selenenic Acid and Isolation of Selenoseleninates." Journal of Organic Chemistry 64, no. 4 (1999): 1084–85. http://dx.doi.org/10.1021/jo982039g.

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41

YOSHIMURA, Chozo, and Kiyoshige MIYAMOTO. "Potentiometric titration of selenic and Telluric acids with titanium(III) chloride in nonaqueous solvents." NIPPON KAGAKU KAISHI, no. 5 (1985): 888–93. http://dx.doi.org/10.1246/nikkashi.1985.888.

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42

Vlaev, L. T., and V. G. Georgieva. "Activation Energy for Electroconduction of Aqueous Solutions of Sulfuric and Selenic Acids and Potassium Tellurate." Russian Journal of Electrochemistry 40, no. 6 (2004): 674–78. http://dx.doi.org/10.1023/b:ruel.0000032021.43984.d3.

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43

Matulková, I., M. Fridrichová, I. Císařová, P. Vaněk, F. Uhlík, and I. Němec. "Vibrational spectroscopic and crystallographic study of the novel guanylurea salts with sulphuric and selenic acids." Journal of Molecular Structure 1131 (March 2017): 294–305. http://dx.doi.org/10.1016/j.molstruc.2016.11.041.

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44

&NA;. "A sustained-release formulation of valproic acid [Selenica-R] has been launched in Japan." Inpharma Weekly &NA;, no. 1449 (2004): 18. http://dx.doi.org/10.2165/00128413-200414490-00051.

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45

Skřivan, M., I. Bubancová, M. Marounek, and G. Dlouhá. "Selenium and α-tocopherol content in eggs produced by hens that were fed diets supplemented with selenomethionine, sodium selenite and vitamin E." Czech Journal of Animal Science 55, No. 9 (2010): 388–97. http://dx.doi.org/10.17221/92/2010-cjas.

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The effect of supplementing dietary selenium (Se) and vitamin E was investigated in 330 24-week-old laying hens. The hens were fed a basal diet containing Se and &amp;alpha;-tocopherol at 0.11 and 26 mg/kg, respectively, or a diet supplemented with Se at 0.3 mg/kg and vitamin E between 0 and 625 mg/kg. Se was supplied as Se-methionine or sodium selenite. The eggs were collected for analysis during the third, seventh and eleventh weeks of the experiment. Supplementation of either form of Se significantly increased the Se concentration in egg yolks and whites, with a more pronounced effect cause
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46

Ahmadzadeh, M., M. Almasi Kashi, M. Noormohammadi, and A. Ramazani. "Self-ordered Porous Anodic Alumina Templates by a Combinatory Anodization Technique in Oxalic and Selenic Acids." Journal of Electronic Materials 50, no. 8 (2021): 4787–96. http://dx.doi.org/10.1007/s11664-021-08973-x.

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47

Saiki, Toshiyuki, Kei Goto, and Renji Okazaki. "Isolation and X-ray Crystallographic Analysis of a Stable Selenenic Acid." Angewandte Chemie International Edition in English 36, no. 20 (1997): 2223–24. http://dx.doi.org/10.1002/anie.199722231.

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48

Rajamohan, N., Kannan R. Rajesh, and M. Rajasimman. "Kinetic Modeling and Effect of Process Parameters on Selenium Removal Using Strong Acid Resin." Engineering, Technology & Applied Science Research 6, no. 4 (2016): 1045–49. https://doi.org/10.5281/zenodo.60977.

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Heavy metal pollution due to the contamination of Selenium above the tolerable limit in the natural environment is a challenging issue that environmental scientists face. This study is aimed at identifying ion exchange technology as a feasible solution to remove selenium ions using 001x7 resin. Parametric experiments were conducted to identify the optimal pH, sorbent dose and speed of agitation. Selenium removal efficiency of 85% was attained at pH 5.0 with 100 mg/L selenium concentration. The increase in resin dose was found to increase removal efficiency. However, metal uptake decreased. The
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49

Pankratov, A. N., N. A. Bychkov, and O. M. Tsivileva. "Interaction of L-cysteine with selenious and selenic acids: A study by the density functional theory method." Journal of Structural Chemistry 51, no. 1 (2010): 9–15. http://dx.doi.org/10.1007/s10947-010-0002-6.

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Murai, Toshiaki, Yuji Ogino, Tomoyoshi Mizutani, Takahiro Kanda, and Shinzi Kato. "Reaction of Selenoic Acid O-Methyl Esters with Aluminum Thiolates Leading to Aromatic Selenothioic Acid S-Alkyl Esters and Their Characterization." Journal of Organic Chemistry 60, no. 9 (1995): 2942–45. http://dx.doi.org/10.1021/jo00114a058.

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