A Rootless Duckweed-Inspired Flexible Artificial Leaf from Plasmonic Photocatalysts

材料科学 光催化 纳米片 纳米技术 等离子体子 人工光合作用 能量转换 化学能 杰纳斯 化学工程 能量转换效率 光电子学 化学 催化作用 有机化学 热力学 物理 工程类
作者
Yifeng Huang,Qianqian Shi,Wenlong Cheng
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (42): 29214-29222 被引量:6
标识
DOI:10.1021/acsnano.4c11435
摘要

The naturally existing leaves are ubiquitous two-dimensional flexible solar-to-chemical conversion systems that can run continuously in a sustainable manner. However, the current artificial photocatalytic systems are unable to achieve this due to the grand challenge in integrating existing photocatalysts in a flexible layout with high conversion efficiency and the ability to function independently. Here, we report on a rootless duckweed-inspired artificial leaf based on a lightweight, flexible, Janus plasmonic nanosheet-integrated sponge. The Janus plasmonic catalytically active nanosheet was made from self-assembled gold nanocube nanoassemblies grown on the porous sponges, which were further coated with an ultrathin palladium layer on one side via a ligand symmetry-breaking method. This sponge-based photocatalytic system is lightweight yet able to float on a water surface and conducts the gas-liquid reaction without auxiliary pumping and mixing devices. In a model reaction of 4-nitrophenol reduction, this floating leaf could achieve 2.5-fold and 65-fold higher efficiency than the corresponding dispersion and precipitation systems, respectively. The film theory is used to explain the sponge-based lightweight solar-to-chemical conversion system in a detailed kinetic and thermodynamic analysis, including the reaction rate constant, activation energy, enthalpy, entropy, Gibbs energy, and equilibrium constant.
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