膜
材料科学
氮化碳
质子
离子
光子学
氮化物
焊剂(冶金)
光电子学
质子输运
化学物理
纳米技术
化学工程
化学
物理
有机化学
光催化
图层(电子)
量子力学
工程类
冶金
催化作用
生物化学
作者
Yizhu Zhang,Shangfa Pan,Yuanyuan Zhang,Shaoqiang Su,Xia Zhang,Jian Liu,Jun Gao
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2022-07-06
卷期号:16 (1): 18-24
被引量:4
标识
DOI:10.1007/s12274-022-4659-x
摘要
Biological proton pumps ferry protons in an active manner and have a high flux (a few to 10 protons/(s·nm2)). Integrating these features in an artificial membrane may open the way for a wide range of applications but it remains challenging. In this work, we employed a structural engineering strategy to construct an asymmetric photonic polymeric carbon nitride (C3N4) membrane that exhibited photo-driven high flux proton pumping performance. The ion transport path through the membrane is reminiscent of that in the high-flux asymmetric biological ion channel. In addition, it has a photonic structure that mimics the mosquito compound eyes with improved light adsorption. Finally, the asymmetric structure constitutes an isotype (n−n) heterojunction that enhances the separation of the light-induced electron-hole pairs. As a result, the membrane shows a flux of 89 µA/cm2 under 100 mW/cm2 white light illumination (approximately one sun), the highest ever reported. This translates to a pumping rate of ∼ 6 proton/(s·nm2), comparable to the biological counterpart. This work highlights the potential of multi-level structural engineering to construct high-performance bionic devices, and may find applications in solar energy harvesting and solar powered membrane process. [Figure not available: see fulltext.]
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