1 |
Enhanced photovoltaic performance of solution-processed Sb2Se3 thin film solar cells by optimizing device structure Ju T, Koo B, Jo JW, Ko MJ Current Applied Physics, 20(2), 282, 2020 |
2 |
Performance investigation of Sb2Se3 based solar cell by device optimization, band offset engineering and Hole Transport Layer in SCAPS-1D Baig F, Khattak YH, Shuja A, Riaz K, Soucase BM Current Applied Physics, 20(8), 973, 2020 |
3 |
Investigation of electrochemical reaction mechanism for antimony selenide nanocomposite for sodium-ion battery electrodes Choi JH, Lee MH, Choi HY, Park CM, Lee SM, Choi JH Journal of Applied Electrochemistry, 49(2), 207, 2019 |
4 |
Tunable optoelectronic properties of radio frequency sputter-deposited Sb2Se3 thin films: Role of growth angle and thickness Dutta A, Singh R, Srivastava SK, Som T Solar Energy, 194, 716, 2019 |
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Interfacial engineering for high efficiency solution processed Sb2Se3 solar cells Wang XM, Tang RF, Yin YW, Ju HX, Li SA, Zhu CF, Chen T Solar Energy Materials and Solar Cells, 189, 5, 2019 |
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6.6% efficient antimony selenide solar cells using grain structure control and an organic contact layer Hutter OS, Phillips LJ, Durose K, Major JD Solar Energy Materials and Solar Cells, 188, 177, 2018 |
7 |
Effect of selenium doping on the crystallization behaviors of GeSb for phase-change memory applications Kim JH, Park JH, Ko DH Thin Solid Films, 653, 173, 2018 |
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Crystal growth direction-controlled antimony selenide thin film absorbers produced using an electrochemical approach and intermediate thermal treatment Kwon YH, Kim YB, Jeong M, Do HW, Cho HK, Lee JY Solar Energy Materials and Solar Cells, 172, 11, 2017 |
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Electrodeposition of antimony selenide thin films from aqueous acid solutions Lai YQ, Han C, Lv XJ, Yang J, Liu FY, Li J, Liu YX Journal of Electroanalytical Chemistry, 671, 73, 2012 |
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AgSbSe2 and AgSb(S,Se)(2) thin films for photovoltaic applications Garza JG, Shaji S, Rodriguez AC, Das Roy TK, Krishnan B Applied Surface Science, 257(24), 10834, 2011 |