화학공학소재연구정보센터
Korean Journal of Materials Research, Vol.32, No.1, 30-35, January, 2022
MoS2의 형상변조를 통한 광전기화학 성능 촉진
Promoting Photoelectrochemical Performance Through the Modulation of MoS2 Morphology
E-mail:
The development of advanced materials to improve the efficiency of photoelectrochemical (PEC) water splitting paves the way for widespread renewable energy technologies. Efficient photoanodes with strong absorbance in visible light increases the effectiveness of solar energy conversion systems. MoS2 in a two-dimensional semiconductor that has excellent absorption performance in visible light and high catalytic activity, showing considerable potential as an agent of PEC water splitting. In this study, we successfully modulated the MoS2 morphology on indium tin oxide substrate by using the metalorganic chemical vapor deposition method, and applied the PEC application. The PEC photocurrent of the vertically grown MoS2 nanosheet structure significantly increased relative to that of MoS2 nanoparticles because of the efficient transfer of charge carriers and high-density active sites. The enhanced photocurrent was attributed to the efficient charge separation and improved light absorption of the MoS2 nanosheet structure. Meanwhile, the photocurrent property of thick nanosheets decreased because of the limit imposed by the diffusion lengths of carriers. This study proposes a valuable photoelectrode design with suitable nanosheet morphology for efficient PEC water splitting.
  1. Walter MG, Warren EL, McKone JR, Boettcher SW, Mi QX, Santori EA, Lewis NS, Chem. Rev., 110(11), 6446 (2010)
  2. Ding Q, Song B, Xu P, Jin S, Chem, 1, 699 (2016)
  3. Seo DB, Kim MS, Trung TN, Kim ET, Electrochim. Acta, 364, 137164 (2020)
  4. Seo DB, Yoo S, Dongquoc V, Trung TN, Kim ET, J. Alloy. Compd., 888, 161587 (2021)
  5. Lu QP, Yu YF, Ma QL, Chen B, Zhang H, Adv. Mater., 28(10), 1917 (2016)
  6. Dang TC, Dang VT, Nguyen TD, et al., Mater. Sci. Semicond. Process, 121, 105308 (2021)
  7. Ali A, Mangrio FA, Chen X, Dai Y, Chen K, Xu X, Xia R, Zhu L, Nanoscale, 11, 7813 (2019)
  8. Seo DB, Trung TN, King DO, Duc DV, Hong S, Sohn Y, Jeong JR, Kim ET, Nano-Micro Lett., 12, 172 (2020)
  9. Nguyen TD, Man MT, Nguyen MH, Seo DB, Kim ET, Mater. Res. Express, 6, 085070 (2019)
  10. Seo DB, Trung TN, Bae SS, Kim ET, Nanomaterials, 11, 1585 (2021)
  11. He H, Lin J, Fu W, et al., Adv. Eng. Mater., 6, 160046 (2016)
  12. Velicky M, Bissett MA, Woods CR, et al., Nano Lett., 16, 2023 (2016)
  13. Chang K, Mei Z, Wang T, Kang Q, Ouyang S, Ye J, ACS Nano, 8, 7078 (2014)
  14. Gupta A, Sakthivel T, Seal S, Progr. Mater. Sci., 73, 44 (2015)
  15. Zhang G, Liu H, Qu J, Li J, Energy Environ. Sci., 9, 1190 (2016)
  16. Seo DB, Kim ET, Korean J. Mater. Res., 31(2), 92 (2021)
  17. Trung TN, Seo DB, Quang ND, Kim D, Kim ET, Electrochim. Acta, 260, 150 (2018)
  18. Kang K, Xie SE, Huang LJ, Han YM, Huang PY, Mak KF, Kim CJ, Muller D, Park J, Nature, 520(7549), 656 (2015)
  19. Lee YH, Zhang XQ, Zhang WJ, Chang MT, Lin CT, Chang KD, Yu YC, Wang JTW, Chang CS, Li LJ, Lin TW, Adv. Mater., 24(17), 2320 (2012)
  20. Jeon J, Jang SK, Jeon SM, Yoo G, Jang YH, Park JH, Lee S, Nanoscale, 7, 1688 (2015)
  21. Yim C, O'Brien M, McEvoy N, Winters S, Mirza I, Lunney JG, Duesberg GS, Appl. Phys. Lett., 104, 103114 (2014)
  22. Zuo P, Jiang L, Li X, Li B, Ran P, Li X, Qu L, Lu Y, ACS Sustainable Chem. Eng., 6, 7704 (2018)
  23. Zhu JQ, Wang ZC, Yu H, Li N, Zhang J, Meng JL, Liao MZ, Zhao J, Lu XB, Du LJ, Yang R, Shi D, Jiang Y, Zhang GY, J. Am. Chem. Soc., 139(30), 10216 (2017)
  24. Chang K, Hai X, Pang H, Zhang HB, Shi L, Liu GG, Liu HM, Zhao GX, Li M, Ye JH, Adv. Mater., 28(45), 10033 (2016)
  25. Eda G, Yamaguchi H, Voiry D, Fujita T, Chen M, Chhowalla M, Nano Lett., 11, 5111 (2011)
  26. Chang K, Mei Z, Wang T, Kang Q, Ouyang S, Ye J, ACS Nano, 8, 7078 (2014)
  27. Seo DB, Kim S, Trung TN, Kim DJ, Kim ET, J. Alloy. Compd., 770, 686 (2019)
  28. Kim YC, Nguyen VT, Lee S, Park JY, Ahn YH, ACS Appl. Mater. Interfaces, 10, 5771 (2018)
  29. Khan SUM, Al-Shahry M, Ingler WB, Science, 297, 2243 (2002)
  30. Ren X, Qi X, Shen Y, Xiao S, Xu G, Zhang Z, Huang Z, Zhong J, J. Phys. D-Appl. Phys., 49, 315304 (2016)
  31. Pi Y, Li Z, Xu D, Liu J, Li Y, Zhang F, Zhang G, Peng W, Fan X, ACS Sustain. Chem. Eng., 5, 5175 (2017)
  32. Dong J, Zhang X, Huag J, Gao S, Mao J, Cai J, Chen Z, Sathasivam S, Carmalt CJ, Lai Y, Electrochem. Commun., 93, 152 (2018)
  33. Hassan MA, Kim MW, Johar MA, Waseem A, Kwon MK, Ryu SW, Sci. Rep., 9, 20141 (2019)