Chen Yong-Jun, Wen Ying-Yi, Li Wen-Hua, Fu Zhi-Hua, Wang Guan-E, Xu Gang
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences (CAS), Fuzhou, Fujian 350002, P. R. China.
University of Chinese Academy of Science (UCAS), Beijing 100049, P. R. China.
Nano Lett. 2023 Apr 26;23(8):3614-3622. doi: 10.1021/acs.nanolett.3c00804. Epub 2023 Apr 5.
Surface modification is a promising method to change the surface properties of nanomaterials, but it is limited in enhancing their intrinsic redox nature. In this work, a "filter amplifier" strategy is proposed for the first time to reverse the intrinsic redox nature of materials. This is demonstrated by coating a COF-316 layer with controlled thickness on TiO to form core-sheath nanowire arrays. This unique structure forms a Z-scheme heterojunction to function as "a filter amplifier" which can conceal the intrinsic oxidative sites and increase the extrinsic reductive sites. Consequently, the selective response of TiO is dramatically reversed from reductive ethanol and methanol to oxidative NO. Moreover, TiO@COF-316 provides remarkably improved sensitivity, response, and recovery speed, as well as unusual anti-humidity properties as compared with TiO. This work not only provides a new strategy to rationally modulate the surface chemistry properties of nanomaterials but also opens an avenue to design high-performance electronic devices with a Z-scheme heterojunction.
表面改性是改变纳米材料表面性质的一种很有前景的方法,但在增强其固有氧化还原性质方面存在局限性。在这项工作中,首次提出了一种“过滤放大器”策略来逆转材料的固有氧化还原性质。通过在TiO上涂覆具有可控厚度的COF-316层以形成核壳纳米线阵列来证明这一点。这种独特的结构形成了一种Z型异质结,起到“过滤放大器”的作用,它可以隐藏固有的氧化位点并增加外在的还原位点。因此,TiO对乙醇和甲醇的还原选择性响应显著逆转至对NO的氧化选择性响应。此外,与TiO相比,TiO@COF-316具有显著提高的灵敏度、响应和恢复速度,以及不同寻常的抗湿度性能。这项工作不仅为合理调控纳米材料的表面化学性质提供了一种新策略,也为设计具有Z型异质结的高性能电子器件开辟了一条途径。