Unravelling the Superior Photoelectrochemical Water Oxidation Performance of the Al-Incorporated CoOOH Cocatalyst-Loaded BiVO4 Photoanode

被引:25
作者
Soundarya Mary, Antonysamy [1 ,2 ]
Murugan, Chinnan [1 ,2 ]
Murugan, Palanichamy [2 ,3 ]
Pandikumar, Alagarsamy [1 ,2 ]
机构
[1] CSIR Cent Electrochem Res Inst, Electro Organ & Mat Electrochem Div, Karaikkudi 630003, Tamil Nadu, India
[2] Acad Sci & Innovat Res AcSIR, Ghaziabad 201002, India
[3] CSIR Cent Electrochem Res Inst, Electrochem Power Sources Div, Karaikkudi 630003, Tamil Nadu, India
关键词
BiVO4/Al-CoOOH; photoelectrochemical watersplitting; oxyhydroxide; Al-CoOOH; photoanode; ALUMINUM;
D O I
10.1021/acssuschemeng.3c03520
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In photoelectrochemical (PEC) water splitting, the development of a highly efficient photoanode is a crucial part. BiVO4 is one of the leading photoanode materials, but its efficiency usually suffers from slow surface water oxidation kinetics and a higher charge recombination process. The loading of the oxygen evolution cocatalyst with a high electrocatalytic activity is an effective method for avoiding these issues in BiVO4, which enhances the consumption of holes from the BiVO4 surface for water oxidation. With this connection, here the Al-doped CoOOH was loaded over the BiVO4 surface, which facilitates the water oxidation kinetics. The 15 mol % Al-doped CoOOH cocatalyst-incorporated BiVO4 photoanode delivered a high photocurrent density of 3.02 mA cm(-2), which was similar to 2.8-fold higher than that of BiVO4 (1.06 mA cm(-2)) and similar to 1.7-fold higher than that of BiVO4/CoOOH. The BiVO4/Al-CoOOH (15%) electrode displays an applied bias photon-to-current efficiency (ABPE) of 0.49% which is higher than those of BiVO4 and BiVO4/CoOOH, and it shows the transient decay time value of 1.83 s, which is similar to 2.3 and similar to 0.7-fold higher than those of BiVO4 and BiVO4/CoOOH; besides, the BiVO4/Al-CoOOH (15%) electrode utilizes 55% of the photogenerated holes for the water oxidation process which is 2.9-fold higher than that of BiVO4. Moreover, the BiVO4/Al-CoOOH electrode delivers a higher C-dl(99 mu F cm(-2)), which is similar to 1.4 and similar to 2.2-fold higher than those of BiVO4/CoOOH (69 mu F cm(-2)) and BiVO4 electrodes (44.5 mu F cm(-2)), respectively. The first-principles calculations revealed that Al-CoOOH requires a lower overpotential (3.53 V) than CoOOH (4.29 V), and the introduction minimum amount of Al species could stabilize the CoOOH, thus enhancing the PEC performance of BiVO4.
引用
收藏
页码:13656 / 13667
页数:12
相关论文
共 50 条
[41]   Constructing MoS2/g-C3N4 heterojunction with enhanced oxygen evolution reaction activity: A theoretical insight [J].
Xue, Zhe ;
Zhang, Xinyu ;
Qin, Jiaqian ;
Liu, Riping .
APPLIED SURFACE SCIENCE, 2020, 510
[42]   Elucidating the role of surface states of BiVO4 with Mo doping and a CoOOH co-catalyst for photoelectrochemical water splitting [J].
Yalavarthi, Rambabu ;
Zboril, Radek ;
Schmuki, Patrik ;
Naldoni, Alberto ;
Kment, Stepan .
JOURNAL OF POWER SOURCES, 2021, 483
[43]   Carbon quantum dots as a visible light sensitizer to significantly increase the solar water splitting performance of bismuth vanadate photoanodes [J].
Ye, Kai-Hang ;
Wang, Zilong ;
Gu, Jiuwang ;
Xiao, Shuang ;
Yuan, Yufei ;
Zhu, Yi ;
Zhang, Yuanming ;
Mai, Wenjie ;
Yang, Shihe .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (03) :772-779
[44]   Electrochemical Construction of Low-Crystalline CoOOH Nanosheets with Short-Range Ordered Grains to Improve Oxygen Evolution Activity [J].
Ye, Shenghua ;
Wang, Jingpeng ;
Hu, Jing ;
Chen, Zhida ;
Zheng, Lirong ;
Fu, Yonghuan ;
Lei, Yaqi ;
Ren, Xiangzhong ;
He, Chuanxin ;
Zhang, Qianling ;
Liu, Jianhong .
ACS CATALYSIS, 2021, 11 (10) :6104-6112
[45]   Defect-rich and ultrathin CoOOH nanolayers as highly efficient oxygen evolution catalysts for photoelectrochemical water splitting [J].
Zhang, Beibei ;
Huang, Xiaojuan ;
Hu, Hongyan ;
Chou, Lingjun ;
Bi, Yingpu .
JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (09) :4415-4419
[46]   Black phosphorene as a hole extraction layer boosting solar water splitting of oxygen evolution catalysts [J].
Zhang, Kan ;
Jin, Bingjun ;
Park, Cheolwoo ;
Cho, Yoonjun ;
Song, Xiufeng ;
Shi, Xinjian ;
Zhang, Shengli ;
Kim, Wooyul ;
Zeng, Haibo ;
Park, Jong Hyeok .
NATURE COMMUNICATIONS, 2019, 10 (1)
[47]   Acceptor-Doping Accelerated Charge Separation in Cu2O Photocathode for Photoelectrochemical Water Splitting: Theoretical and Experimental Studies [J].
Zhang, Mengmeng ;
Wang, Jiajun ;
Xue, Hui ;
Zhang, Jinfeng ;
Peng, Shengjie ;
Han, Xiaopeng ;
Deng, Yida ;
Hu, Wenbin .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2020, 59 (42) :18463-18467
[48]   Different Photostability of BiVO4 in Near-pH-Neutral Electrolytes [J].
Zhang, Siyuan ;
Ahmet, Ibbi ;
Kim, Se-Ho ;
Kasian, Olga ;
Mingers, Andrea M. ;
Schnell, Patrick ;
Koelbach, Moritz ;
Lim, Joohyun ;
Fischer, Anna ;
Mayrhofer, Karl J. J. ;
Cherevko, Serhiy ;
Gault, Baptiste ;
van de Krol, Roel ;
Scheu, Christina .
ACS APPLIED ENERGY MATERIALS, 2020, 3 (10) :9523-9527
[49]   Dissolution of BiVO4 Photoanodes Revealed by Time-Resolved Measurements under Photoelectrochemical Conditions [J].
Zhang, Siyuan ;
Rohloff, Martin ;
Kasian, Olga ;
Mingers, Andrea M. ;
Mayrhofer, Karl J. J. ;
Fischer, Anna ;
Scheu, Christina ;
Cherevko, Serhiy .
JOURNAL OF PHYSICAL CHEMISTRY C, 2019, 123 (38) :23410-23418
[50]   Photoelectrodes Based upon Mo: BiVO4 Inverse Opals for Photoelectrochemical Water Splitting [J].
Zhou, Min ;
Bao, Jian ;
Xu, Yang ;
Zhang, Jiajia ;
Xie, Junfeng ;
Guan, Meili ;
Wang, Chengliang ;
Wen, Liaoyong ;
Lei, Yong ;
Xie, Yi .
ACS NANO, 2014, 8 (07) :7088-7098