Zailun LiuYunfei MaJunqing LiYing TuHui YangKelin HeChao ChenYulin WangXiang LinHongli SunChenliang SuQitao Zhang
Abstract Uncovering the excitation processes of photocatalysts and enhancing the dissociation of excitons into free photogenerated electrons and holes for photocatalytic CO 2 reduction is imperative yet quite challenging. Herein, an efficient strategy of reducing the binding energy of excitons to boost exciton dissociation is reported by anchoring the low valence single‐atom Cu sites in In 2 S 3 nanosheets (Cu‐In 2 S 3 ), which can enhance photocatalytic CO 2 reduction activity. The investigations of photo‐irradiated Kelvin probe force microscopy (KPFM), in situ irradiates X‐ray photoelectron spectroscopy (XPS), and temperature‐dependent photoluminescence (TD‐PL) indicate that the doping of low valence single‐atom Cu can efficiently drive the charge transfer and separation. Moreover, the studies of the dynamic behaviors of charge carriers by femtosecond time‐resolved spectroscopy (fs‐TAS) reveal that the doping of low valence Cu single‐atom sites allows the promotion of exciton dissociation by reducing the binding energy of the exciton, resulting in an enhanced photocatalytic CO 2 reduction of Cu‐In 2 S 3 nanosheets. The aforementioned strategy for enhancing the dissociation efficiency of excitons in photocatalysts will offer a highly efficient and promising approach for the photocatalytic CO 2 reduction and other photocatalytic applications.
Bin ZhaoXiaoming QiuYu SongShulong LiKun ZhangZihao MouQingyuan WangBeibei ZhangZhijun Wang
Han LiQinjun SongSijie WanChing‐Wei TungChengyuan LiuYang PanGuoqiang LuoHao Ming ChenShaowen CaoJiaguo YuLianmeng Zhang
Yan Zhang (8098)Junzhe Wang (8543388)Liang Li (46069)Honggang Zhang (419051)Bei Li (90587)Xiangxiang Zhang (498122)Zeyan Wang (1781983)Yuanyuan Liu (136992)Peng Wang (34436)Hefeng Cheng (1803727)Ying Dai (296727)Baibiao Huang (1358676)Zhaoke Zheng (1685785)
Yan ZhangJunzhe WangLiang LiHonggang ZhangBei LiXiangxiang ZhangZeyan WangYuanyuan LiuPeng WangHefeng ChengYing DaiBaibiao HuangZhaoke Zheng
Yingying SongXiaojun ZhaoXinyan FengLimiao ChenTiechui YuanFuqin Zhang