One‐pot synthesis of MIL‐68(In)‐derived CdIn <sub>2</sub> S <sub>4</sub> /In <sub>2</sub> S <sub>3</sub> tubular heterojunction for highly selective CO <sub>2</sub> photoreduction
Dandan Wang, Mengyang Xu, Zhao-Xin Lin, Jiahui Wu, Weiting Yang, Hongji Li, Zhong‐Min Su
Abstract
Abstract The goal of photocatalytic CO 2 reduction is to obtain a single energy‐bearing product with high efficiency and stability. Consequently, constructing highly selective photocatalysts with enhanced surface and optoelectronic properties is crucial for achieving this objective. Here, we have developed a simple one‐pot vulcanization method to synthesize a MIL‐68(In)‐derived CdIn 2 S 4 /In 2 S 3 heterojunction that exhibited stable and high selectivity. Multiple characterizations of the CdIn 2 S 4 /In 2 S 3 heterojunction revealed a hierarchical tubular structure with numerous surface reactive sites, a high visible‐light utilization rate ( λ < 600 nm), efficient charge separation, and a prolonged charge‐carrier lifetime. Moreover, an S‐scheme charge transfer mechanism, based on the interleaved band between the two components, improved the reduction capability of the electrons. Benefiting from the compositional and structural synergy, the yield CO by CdIn 2 S 4 /In 2 S 3 ‐250 (CI‐250) reached 135.62 μmol·g −1 ·h −1 , which was 49.32 times and 32.88 times higher than that of In 2 S 3 and CdIn 2 S 4 , respectively. The CdIn 2 S 4 /In 2 S 3 heterojunction exhibited a quantum efficiency of 4.23% with a CO selectivity of 71%. Four cycle tests confirmed the good stability and recyclability of the CI‐250. This work provides a new approach for designing and preparing high‐performance hollow MOFs‐based photocatalysts for scalable and sustainable CO 2 reduction.