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Dive into the research topics where Prasert Sinsermsuksakul is active.

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Featured researches published by Prasert Sinsermsuksakul.


Applied Physics Letters | 2013

Enhancing the efficiency of SnS solar cells via band-offset engineering with a zinc oxysulfide buffer layer

Prasert Sinsermsuksakul; Katy Hartman; Sang Bok Kim; Jaeyeong Heo; Leizhi Sun; Helen Hejin Park; Rupak Chakraborty; Tonio Buonassisi; Roy G. Gordon

SnS is a promising earth-abundant material for photovoltaic applications. Heterojuction solar cells were made by vapor deposition of p-type tin(II) sulfide, SnS, and n-type zinc oxysulfide, Zn(O,S), using a device structure of soda-lime glass/Mo/SnS/Zn(O,S)/ZnO/ITO. A record efficiency was achieved for SnS-based thin-film solar cells by varying the oxygen-to-sulfur ratio in Zn(O,S). Increasing the sulfur content in Zn(O,S) raises the conduction band offset between Zn(O,S) and SnS to an optimum slightly positive value. A record SnS/Zn(O,S) solar cell with a S/Zn ratio of 0.37 exhibits short circuit current density (Jsc), open circuit voltage (Voc), and fill factor (FF) of 19.4 mA/cm2, 0.244 V, and 42.97%, respectively, as well as an NREL-certified total-area power-conversion efficiency of 2.04% and an uncertified active-area efficiency of 2.46%.


Applied Physics Letters | 2013

Band alignment of SnS/Zn(O,S) heterojunctions in SnS thin film solar cells

Leizhi Sun; Richard Haight; Prasert Sinsermsuksakul; Sang Bok Kim; Helen Hejin Park; Roy G. Gordon

Band alignment is critical to the performance of heterojunction thin film solar cells. In this letter, we report band alignment studies of SnS/Zn(O,S) heterojunctions with various compositions of Zn(O,S). Valence band offsets (VBOs) are measured by femtosecond laser pump/probe ultraviolet photoelectron spectroscopy (fs-UPS) from which conduction band offsets (CBOs) are calculated by combining with band gaps obtained by optical transmission/reflection measurements. The SnS/Zn(O,S) heterojunctions with S/Zn ratios of 0.37 and 0.50 have desirable small positive CBOs, while a ratio of 0.64 produces an undesirable large positive CBO. The results are consistent with the device performance of SnS/Zn(O,S) solar cells.


Advanced Energy Materials | 2014

Overcoming Efficiency Limitations of SnS-Based Solar Cells

Prasert Sinsermsuksakul; Leizhi Sun; Sang Woon Lee; Helen Hejin Park; Sang Bok Kim; Chuanxi Yang; Roy G. Gordon


Advanced Energy Materials | 2011

Atomic Layer Deposition of Tin Monosulfide Thin Films

Prasert Sinsermsuksakul; Jae Yeong Heo; Wontae Noh; Adam S. Hock; Roy G. Gordon


Progress in Photovoltaics | 2015

Co-optimization of SnS absorber and Zn(O,S) buffer materials for improved solar cells

Helen Hejin Park; Rachel Lenox Heasley; Leizhi Sun; Vera Steinmann; R. Jaramillo; Katy Hartman; Rupak Chakraborty; Prasert Sinsermsuksakul; Danny Chua; Tonio Buonassisi; Roy G. Gordon


Chemistry of Materials | 2012

Antimony-doped Tin(II) Sulfide Thin Films

Prasert Sinsermsuksakul; Rupak Chakraborty; Sang Bok Kim; S. M. Heald; Tonio Buonassisi; Roy G. Gordon


Chemistry of Materials | 2014

Synthesis of N-Heterocyclic Stannylene (Sn(II)) and Germylene (Ge(II)) and a Sn(II) Amidinate and Their Application as Precursors for Atomic Layer Deposition

Sang Bok Kim; Prasert Sinsermsuksakul; Adam S. Hock; Robert D. Pike; Roy G. Gordon


Journal of Physical Chemistry C | 2011

(Sn,Al)Ox Films Grown by Atomic Layer Deposition

Jaeyeong Heo; Yiqun Liu; Prasert Sinsermsuksakul; Zhefeng Li; Leizhi Sun; Wontae Noh; Roy G. Gordon


Archive | 2011

Cyclic metal amides and vapor deposition using them

Roy G. Gordon; Adam S. Hock; Jaeyeong Heo; Prasert Sinsermsuksakul


Archive | 2011

ALD of Tin Monosulfide, SnS

Prasert Sinsermsuksakul; Roy G. Gordon; Adam S. Hock

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Adam S. Hock

Illinois Institute of Technology

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Rupak Chakraborty

Massachusetts Institute of Technology

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Tonio Buonassisi

Massachusetts Institute of Technology

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