Construction of core–shell MOF@COF hybrids with a Z-scheme heterojunction for efficient visible light photocatalysis

文献情報

出版日 2023-10-02
DOI 10.1039/D3CY00869J
インパクトファクター 6.119
著者

Jun Pang, Weijie Chen, Jintao Hu, Jie Cheng, Mingqiang Tang, Zewei Liu, Rong Tan



要旨

Metal–organic frameworks (MOFs) have emerged as promising photocatalysts due to their tunable architectures and semiconductor-like behavior. However, their photocatalytic efficiency is often hampered by suboptimal light utilization and fast charge carrier recombination. To address these challenges, we developed core–shell MOF@COF Z-scheme hybrids, where a covalent organic framework (COF, TpBD-COF) was coated on the NH2–UiO-66 surface via imine bond interconnection. Characterization and DFT calculation results suggested the formation of a well-contacted interface, as well as a Z-scheme heterojunction between the NH2–UiO-66 core and TpBD-COF shell. The TpBD-COF shell with an inherently narrow energy band contributed to the visible light absorption, while the fabricated Z-scheme heterojunction resulted in the spatial electron–hole (e−–h+) separation and high redox ability. By rationally controlling the ratio of NH2–UiO-66 and TpBD-COF precursors, the tailored thickness of the TpBD-COF shell was achieved, which could modulate the Z-scheme heterojunction interface, and thus optimized the photocatalytic performance. The core–shell MOF@COF hybrids were highly efficient in visible light-driven oxidative coupling of amines to imines in air without the need for any sacrificial agents. Almost quantitative conversion (94%) of benzylamine to N-benzylidenebenzylamine was achieved over optimal NH2–UiO-66@TpBD-COF(21.9), which is approximately 4.0 and 1.5 times that of pristine NH2–UiO-66 and TpBD-COF, respectively. The superior catalytic performance, coupled with benign reaction conditions (visible light, room temperature, ambient air), makes NH2–UiO-66@TpBD-COF(x) highly promising for solar utilization in green synthesis.

掲載誌

Catalysis Science & Technology

Catalysis Science & Technology
CiteScore: 5.91
自己引用率: 4.5%
年間論文数: 600

Catalysis Science & Technology is committed to publishing research reporting high-quality, cutting-edge developments across the catalysis community at large. The journal places equal focus on publications from the heterogeneous, homogeneous, thermo-, electro-, photo-, organo- and biocatalysis communities. Works published in the journal feature a balanced mix of fundamental, technology-oriented, experimental, computational, digital and data-driven original research, thus appealing to catalysis practitioners in both academic and industrial environments. Original research articles published in the journal must demonstrate new catalytic discoveries and/or methodological advances that represent a significant advance on previously published work, from the molecular to the process scales. We welcome rigorous research in a wide range of timely or emerging applications related to the environment, health, energy and materials. Catalysis Science & Technology publishes Communications, Articles, Reviews and Perspectives. More details regarding manuscript types may be found in the Information for Authors section.

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