Citation: Xiaoyan Cai, Jiahao Du, Guangming Zhong, Yiming Zhang, Liang Mao, Zaizhu Lou. Constructing a CeO2/ZnxCd1−xIn2S4 S-Scheme Hollow Heterostructure for Efficient Photocatalytic H2 Evolution[J]. Acta Physico-Chimica Sinica, ;2023, 39(11): 230201. doi: 10.3866/PKU.WHXB202302017 shu

Constructing a CeO2/ZnxCd1−xIn2S4 S-Scheme Hollow Heterostructure for Efficient Photocatalytic H2 Evolution

  • Corresponding author: Liang Mao, maoliang@cumt.edu.cn Zaizhu Lou, zzlou@jnu.edu.cn
  • Received Date: 13 February 2023
    Revised Date: 16 March 2023
    Accepted Date: 17 March 2023
    Available Online: 23 March 2023

    Fund Project: the National Natural Science Foundation of China 22209203the National Natural Science Foundation of China 22175076the China Postdoctoral Science Foundation 2021M693419the Pengcheng Shangxue Education Fund of Jiangsu Key Laboratory of Coal-Based Greenhouse Gas Control and Utilization PCSX202202the Material Science and Engineering Discipline Guidance Fund of China University of Mining and Technology CUMTMS202202the Material Science and Engineering Discipline Guidance Fund of China University of Mining and Technology CUMTMS202207the Undergraduate Training Program for Innovation and Entrepreneurship of China University of Mining and Technology 202210290200Y

  • With the exhaustion of fossil energy, the energy crisis is becoming increasingly serious, which greatly hinders the sustainable development of society. Therefore, the development of new energy technologies as a substitute for non-renewable and highly polluting fossil energy is extremely urgent. The environmental benefits and high energy density of hydrogen (H2) make it an ideal clean energy source. Photocatalytic water splitting, which was first demonstrated in the pioneering work on TiO2 photoelectrodes under UV-light irradiation, has been extensively researched and has been shown to be an effective method for addressing the global energy crisis. However, most of the photocatalysts used for H2 production still suffer from low solar energy utilization and fast photogenerated charge recombination, which seriously limit their practical applications in the field of solar-to-hydrogen energy conversion. Therefore, it is necessary yet greatly challenging to develop a visible-light-responsive photocatalyst with efficient photogenerated charge separation through reasonable modification strategy. Layered structured ZnIn2S4 (ZIS) is a promising photocatalyst to split water for H2 evolution owing to its suitable electronic structure, strong light absorption, chemical stability, and low toxicity. However, its low charge separation efficiency renders its photocatalytic performance unsatisfactory. Herein, to overcome this issue, a band structure regulation strategy that integrates solid solution formation with heterostructure construction was proposed. By growing ZnxCd1−xIn2S4 (ZCIS) nanosheets on the surface of CeO2 hollow spheres in situ, a novel hollow heterostructure CeO2/ZCIS with efficient charge separation was constructed as photocatalyst for H2 generation. The introduction of the Cd cation in ZIS upshifts the conduction band (CB) and valence band (VB) of ZCIS, enhancing the built-in electrical field on the interface. Those electronic band changes induce the S-scheme structure in CeO2/ZCIS, promoting charge separation for photocatalysis. Moreover, the upshift of the CB generates photoelectrons with high H2 generation ability. As a result, the optimal 1:6-CeO2/Zn0.9Cd0.1In2S4 heterostructure exhibits 4.09 mmol·g−1·h−1 H2 generation during photocatalysis, which is 6.8-, 3.0-, and 2.2-fold as those of ZIS, ZCIS, and CeO2/ZIS, respectively. This work provides one efficient strategy to develop highly active S-scheme photocatalysts for hydrogen generation.
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    1. [1]

      Yang, Y.; Wu, J.; Cheng, B.; Zhang, L.; Al-Ghamdi, A. A.; Wageh, S.; Li, Y. Chin. J. Struc. Chem. 2022, 41, 2206006. doi: 10.14102/j.cnki.0254-5861.2022-0124  doi: 10.14102/j.cnki.0254-5861.2022-0124

    2. [2]

      Qi, M. -Y.; Conte, M.; Anpo, M.; Tang, Z. -R.; Xu, Y. -J. Chem. Rev. 2021, 121, 13051. doi: 10.1021/acs.chemrev.1c00197  doi: 10.1021/acs.chemrev.1c00197

    3. [3]

      Li, Y.; Hu, X.; Huang, J.; Wang, L.; She, H.; Wang, Q. Acta Phys. -Chim. Sin. 2021, 37, 2009022.  doi: 10.3866/PKU.WHXB202009022

    4. [4]

      Huang, Y.; Mei, F.; Zhang, J.; Dai, K.; Dawson, G. Acta Phys. -Chim. Sin. 2022, 38, 2108028.  doi: 10.3866/PKU.WHXB202108028

    5. [5]

      Wu, K.; Jiang, R.; Zhao, Y.; Mao, L.; Gu, X.; Cai, X.; Zhu, M. J. Colloid Interface Sci. 2022, 619, 339. doi: 10.1016/j.jcis.2022.03.124  doi: 10.1016/j.jcis.2022.03.124

    6. [6]

      Cai, X.; Zeng, Z.; Liu, Y.; Li, Z.; Gu, X.; Zhao, Y.; Mao, L.; Zhang, J. Appl. Catal. B: Environ. 2021, 297, 120391. doi: 10.1016/j.apcatb.2021.120391  doi: 10.1016/j.apcatb.2021.120391

    7. [7]

      Mei, Z.; Wang, G.; Yan, S.; Wang, J. Acta Phys. -Chim. Sin. 2021, 37, 2009097.  doi: 10.3866/PKU.WHXB202009097

    8. [8]

      Wu, K.; Mao, L.; Gu, X.; Cai, X.; Zhao, Y. Chin. Chem. Lett. 2022, 33, 926. doi: 10.1016/j.cclet.2021.07.011  doi: 10.1016/j.cclet.2021.07.011

    9. [9]

      Cao, S.; Yu, J.; Wageh, S.; Al-Ghamdi, A. A.; Mousavi, M.; Ghasemi, J. B.; Xu, F. J. Mater. Chem. A 2022, 10, 17174. doi: 10.1039/D2TA05181H  doi: 10.1039/D2TA05181H

    10. [10]

      Zhao, Z.; Dai, K.; Zhang, J.; Dawson, G. Adv. Sustain. Syst. 2023, 7, 2100498. doi: 10.1002/adsu.202100498  doi: 10.1002/adsu.202100498

    11. [11]

      Xiong, Z.; Hou, Y.; Yuan, R.; Ding, Z.; Ong, W. -J.; Wang, S. Acta Phys. -Chim. Sin. 2022, 38, 2111021.  doi: 10.3866/PKU.WHXB202111021

    12. [12]

      Wang, X.; Li, Y., Li, Z. Chin. J. Catal. 2021, 42, 409. doi: 10.1016/S1872-2067(20)63660-9.  doi: 10.1016/S1872-2067(20)63660-9

    13. [13]

      Shi, X.; Dai, C.; Wang, X.; Hu, J.; Zhang, J.; Zheng, L.; Mao, L.; Zheng, H.; Zhu, M. Nat. Commun. 2022, 13, 1287. doi: 10.1038/s41467-022-28995-1  doi: 10.1038/s41467-022-28995-1

    14. [14]

      Chen, P.; Zhou, Y.; Dong, F. Acta Phys. -Chim. Sin. 2021, 37, 2010010.  doi: 10.3866/PKU.WHXB202010010

    15. [15]

      Wang, J.; Sun, S.; Zhou, R.; Li, Y.; He, Z.; Ding, H.; Chen, D., Ao, W. J. Mater. Sci. Technol. 2021, 78, 1. doi: 10.1016/j.jmst.2020.09.045  doi: 10.1016/j.jmst.2020.09.045

    16. [16]

      Zou, Y.; Shi, J. -W.; Sun, L.; Ma, D.; Mao, S.; Lv, Y.; Cheng, Y. Chem. Eng. J. 2019, 378, 122192. doi: 10.1016/j.cej.2019.122192  doi: 10.1016/j.cej.2019.122192

    17. [17]

      Li, Z.; Zhong, W.; Gao, D.; Chen, F.; Yu. H. Adv. Sustain. Syst. 2023, 7, 2200030. doi: 10.1002/adsu.202200030  doi: 10.1002/adsu.202200030

    18. [18]

      Wang, Z.; Liu, R.; Zhang, J.; Dai, K. Chin. J. Struc. Chem. 2022, 41, 2206015. doi: 10.14102/j.cnki.0254-5861.2022-0108  doi: 10.14102/j.cnki.0254-5861.2022-0108

    19. [19]

      Liu, L.; Hu, T.; Dai, K.; Zhang, J.; Liang, C. Chin. J. Catal. 2021, 42, 46. doi: 10.1016/S1872-2067(20)63560-4  doi: 10.1016/S1872-2067(20)63560-4

    20. [20]

      Zhang, J.; Wang, L.; Mousavi, M.; Ghasemi, J. B.; Yu, J. Chin. J. Struc. Chem. 2022, 41, 2206003. doi: 10.14102/j.cnki.0254-5861.2022-0150  doi: 10.14102/j.cnki.0254-5861.2022-0150

    21. [21]

      Cai, X.; Su, M.; Zeng, Z.; Weng, H.; Cai, Z.; Zhang, J.; Mao, L. Sustain. Energy Fuels 2021, 5, 6441. doi: 10.1039/D1SE01266E  doi: 10.1039/D1SE01266E

    22. [22]

      Wang, L.; Cheng, B.; Zhang, L.; Yu, J. Small 2021, 17, 2103447. doi: 10.1002/smll.202103447  doi: 10.1002/smll.202103447

    23. [23]

      Zhang, L.; Zhang, J.; Yu, H.; Yu, J. Adv. Mater. 2022, 34, 2107668. doi: 10.1002/adma.202107668  doi: 10.1002/adma.202107668

    24. [24]

      Yu, J.; Li, X.; Ong, W. -J.; Zhang, L. Acta Phys. -Chim. Sin. 2021, 37, 2012043.  doi: 10.3866/PKU.WHXB202012043

    25. [25]

      Lu, C.; You, D.; Li, J.; Wen, L.; Li, B.; Guo, T.; Lou, Z. Nat. Commun. 2022, 13, 6984. doi: 10.1038/s41467-022-34738-z  doi: 10.1038/s41467-022-34738-z

    26. [26]

      Yang, C.; Lu, Y.; Zhang, L.; Kong, Z.; Yang, T.; Tao, L.; Zou, Y.; Wang, S. Small Struct. 2021, 2, 2100058. doi: 10.1002/sstr.202100058  doi: 10.1002/sstr.202100058

    27. [27]

      Ma, Y.; Tian, Z.; Zhai, W.; Qu, Y. Nano Res. 2022, 15, 10328. doi: 10.1007/s12274-022-4666-y  doi: 10.1007/s12274-022-4666-y

    28. [28]

      Jiang, R.; Mao, L.; Zhao, Y.; Zhang, J.; Chubenko, E. B.; Bondarenko, V.; Sui, Y.; Gu, X.; Cai X. Sci. Chin. Mater. 2023, 66, 139. doi: 10.1007/s40843-022-2132-8  doi: 10.1007/s40843-022-2132-8

    29. [29]

      Yang, H.; Zhang, J.; Dai, K. Chin. J. Catal. 2022, 43, 255. doi: 10.1016/S1872-2067(20)63784-6  doi: 10.1016/S1872-2067(20)63784-6

    30. [30]

      Zhao, Z.; Li, X.; Dai, K.; Zhang, J.; Dawson, G. J. Mater. Sci. Technol. 2022, 117, 109. doi: 10.1016/j.jmst.2021.11.046  doi: 10.1016/j.jmst.2021.11.046

    31. [31]

      Huang, Y.; Dai, K.; Zhang, J.; Dawson, G. Chin. J. Catal. 2022, 43, 2539. doi: 10.1016/S1872-2067(21)64024-X  doi: 10.1016/S1872-2067(21)64024-X

    32. [32]

      Yang, H.; Dai, K.; Zhang, J.; Dawson, G. Chin. J. Catal. 2022, 43, 2111. doi: 10.1016/S1872-2067(22)64096-8  doi: 10.1016/S1872-2067(22)64096-8

    33. [33]

      Zhang, J.; Fu, J.; Dai, K. J. Mater. Sci. Technol. 2022, 116, 192. doi: 10.1016/j.jmst.2021.10.045  doi: 10.1016/j.jmst.2021.10.045

    34. [34]

      Zhu, B.; Tan, H.; Fan, J.; Cheng, B.; Yu, J.; Ho, W. J. Materiomics 2021, 7, 988. doi: 10.1016/j.jmat.2021.02.015  doi: 10.1016/j.jmat.2021.02.015

    35. [35]

      Luo, C.; Long, Q.; Chen, B.; Zhu, B.; Wang, L. Acta Phys. -Chim. Sin. 2023, 39, 2212026.  doi: 10.3866/PKU.WHXB202212026

    36. [36]

      Fei, X.; Zhuang, L.; Yu, J.; Zhu, B. Front. Nanotechnol. 2021, 3, 698351. doi: 10.3389/fnano.2021.698351  doi: 10.3389/fnano.2021.698351

    37. [37]

      Wang, S.; Guan, B. Y.; Wang, X.; Lou, X. W. J. Am. Chem. Soc. 2018, 140, 15145. doi: 10.1021/jacs.8b07721  doi: 10.1021/jacs.8b07721

    38. [38]

      Zhu, Q.; Xing, M.; Zhang, J. Chem. Ind. Eng. Prog. 2021, 40, 4774.  doi: 10.16085/j.issn.1000-6613.2021-0315

    39. [39]

      Fang, B.; Xing, Z.; Sun, D.; Li, Z.; Zhou, W. Adv. Powder Mater. 2021, 1, 100021. doi: 10.1016/j.apmate.2021.11.008  doi: 10.1016/j.apmate.2021.11.008

    40. [40]

      Guo, Z.; Jian, F.; Du, F. Scr. Mater. 2009, 61, 48. doi: 10.1016/j.scriptamat.2009.03.005  doi: 10.1016/j.scriptamat.2009.03.005

    41. [41]

      Tian, J.; Sang, Y.; Zhao, Z.; Zhou, W.; Wang, D.; Kang, X.; Liu, H.; Wang, J.; Chen, S.; Cai, H. Small 2013, 9, 3864. doi: 10.1002/smll.201202346  doi: 10.1002/smll.201202346

    42. [42]

      Jiang, R.; Mao, L.; Zhao, Y.; Zhang, J.; Cai, X.; Gu, X. J. Colloid Interface Sci. 2022, 606, 317. doi: 10.1016/j.jcis.2021.08.008  doi: 10.1016/j.jcis.2021.08.008

    43. [43]

      Wang, O.; Wang, L.; Li, Z.; Xu, Q.; Lin, Q.; Wang, H.; Du, Z.; Shen, H.; Li, L. S. Nanoscale 2018, 10, 5650. doi: 10.1039/C7NR09175C  doi: 10.1039/C7NR09175C

    44. [44]

      She, X.; Xu, H.; Wang, H.; Xia, J.; Song, Y.; Yan, J.; Xu, Y.; Zhang, Q.; Du, D.; Li, H. Dalton Trans. 2015, 44, 7021. doi: 10.1039/C4DT03793F  doi: 10.1039/C4DT03793F

    45. [45]

      Zhang, Y.; Zhang, N.; Tang, Z. -R.; Xu, Y. -J. ACS Sustain. Chem. Eng. 2013, 1, 1258. doi: 10.1021/sc400116k  doi: 10.1021/sc400116k

    46. [46]

      Qin, Y.; Li, H.; Lu, J.; Feng, Y.; Meng, F.; Ma, C.; Yan, Y.; Meng, M. Appl. Catal. B: Environ. 2020, 277, 119254. doi: 10.1016/j.apcatb.2020.119254  doi: 10.1016/j.apcatb.2020.119254

    47. [47]

      Qin, Y.; Li, H.; Lu, J.; Ding, Y.; Ma, C.; Liu, X.; Liu, Z.; Huo, P.; Yan, Y. Appl. Surf. Sci. 2019, 481, 1313. doi: 10.1016/j.apsusc.2019.03.244  doi: 10.1016/j.apsusc.2019.03.244

    48. [48]

      Lou, Z.; Zhu, M.; Yang, X.; Zhang, Y.; Whangbo, M. -H.; Li, B.; Huang, B. Appl. Catal. B: Environ. 2018, 226, 10. doi: 10.1016/j.apcatb.2017.12.023  doi: 10.1016/j.apcatb.2017.12.023

    49. [49]

      Mao, L.; Cai, X.; Zhu, M. Rare Metals 2021, 40, 1067. doi: 10.1007/s12598-020-01589-w  doi: 10.1007/s12598-020-01589-w

    50. [50]

      Kumar, Y.; Kumar, R.; Raizada, P.; Khan, A. A. P.; Van, L. Q.; Singh, P.; Nguyen. V. -H. J. Mater. Sci. Technol. 2021, 87, 234. doi: 10.1016/j.jmst.2021.01.051  doi: 10.1016/j.jmst.2021.01.051

    51. [51]

      Li, H.; Li, F.; Yu, J.; Cao, S. Acta Phys. -Chim. Sin. 2021, 37, 2010073.  doi: 10.3866/PKU.WHXB202010073

    52. [52]

      Cai, X.; Mao, L.; Zhang, J.; Zhu, M.; Fujitsuka, M.; Majima, T. J. Mater. Chem. A 2017, 5, 10442. doi: 10.1039/C7TA02379K  doi: 10.1039/C7TA02379K

    53. [53]

      Han, G.; Xu, F.; Cheng, B.; Li, Y.; Yu, J.; Zhang, L. Acta Phys. -Chim. Sin. 2022, 38, 2112037.  doi: 10.3866/PKU.WHXB202112037

    54. [54]

      Clément, J. -L.; Ferré, N.; Siri, D.; Karoui, H.; Rockenbauer, A.; Tordo, P. J. Org. Chem. 2005, 70, 1198. doi: 10.1021/jo048518z  doi: 10.1021/jo048518z

    55. [55]

      Lee, J.; Kim, H.; Lee, T.; Jang, W.; Lee, K. H.; Soon, A. Chem. Mater. 2019, 31, 9148. doi: 10.1021/acs.chemmater.9b03539  doi: 10.1021/acs.chemmater.9b03539

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