Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (1): 100157.doi: 10.1016/j.actphy.2025.100157
• ARTICLE • Previous Articles
Jiangyuan Qiu1,2,3, Tao Yu1,2, Junxin Chen3, Wenxuan Li3, Xiaoxuan Zhang1,2, jinsheng Li1,2, Rui Guo1,2,*(
), Zaiyin Huang3,*(
), Xuanwen Liu1,2,*(
)
Received:2025-05-04
Revised:2025-08-10
Accepted:2025-08-13
Published:2025-11-01
Contact:
Jiangyuan Qiu, Tao Yu, Junxin Chen, Wenxuan Li, Xiaoxuan Zhang, jinsheng Li, Rui Guo, Zaiyin Huang, Xuanwen Liu. Modulate surface potential well depth of Bi12O17Cl2 by FeOOH in Bi12O17Cl2@FeOOH heterojunction to boost piezoelectric charge transfer and piezo-self-Fenton catalysis[J]. Acta Phys. -Chim. Sin. 2026, 42(1), 100157. doi: 10.1016/j.actphy.2025.100157
Fig 8
(a) Time-course curve of H₂O₂ generation rate by piezoelectric catalysts, (b) H₂O₂ generation rate via piezoelectric catalysis. (d) TC degradation and (e) Time courses of TC degradation evolved rate over different piezoelectric catalysts. (c) and (f) Performance comparison of TC degradation and H2O2 production over various representative piezoelectric catalysts."
Fig 9
(a) H2O2 generation under different scavengers; (b) TC degradation under different scavengers; (c) Band alignments in BOC; (d) and (e) Detection of •O2− and •OH of BOC and 0.35-BF by ESR spectra; (f) Proposed piezoelectric catalytic mechanism of TC degradation in BOC@FeOOH heterojunction."
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