Loh Joel Y Y, Safari Mahdi, Mao Chengliang, Viasus Camilo J, Eleftheriades George V, Ozin Geoffrey A, Kherani Nazir P
Department of Electrical and Computing Engineering, University of Toronto, Toronto, Ontario M5S 3G4, Canada.
Department of Chemistry,University of Toronto, 80 Saint George Street, Toronto, Ontario M5S 3H6, Canada.
Nano Lett. 2021 Nov 10;21(21):9124-9130. doi: 10.1021/acs.nanolett.1c02886. Epub 2021 Nov 1.
Metamaterials are a new class of artificial materials that can achieve electromagnetic properties that do not occur naturally, and as such they can also be a new class of photocatalytic structures. We show that metal-based catalysts can achieve electromagnetic field amplification and broadband absorption by decoupling optical properties from the material composition as exemplified with a ZnO/Cu metamaterial surface comprising periodically arranged nanocubes. Through refractive index engineering close to the index of air, the metamaterial exhibits near-perfect 98% absorption. The combination of plasmonics and broadband absorption elevates the weak electric field intensities across the nonplasmonic absorption range. This feedback between optical excitation and plasmonic excitation dramatically enhances light-to-dark catalytic rates by up to a factor of 181 times, compared to a 3 times photoenhancement of ZnO/Cu nanoparticles or films, and with angular invariance. These results show that metamaterial catalysts can act as a singular light harvesting device that substantially enhances photocatalysis of important reactions.
超材料是一类新型人造材料,能够实现自然界中不存在的电磁特性,因此它们也可以成为一类新型光催化结构。我们表明,基于金属的催化剂可以通过将光学性质与材料组成解耦来实现电磁场放大和宽带吸收,例如具有周期性排列纳米立方体的ZnO/Cu超材料表面。通过接近空气折射率的折射率工程,该超材料表现出近乎完美的98%的吸收率。等离子体激元与宽带吸收的结合提高了非等离子体吸收范围内的弱电场强度。与ZnO/Cu纳米颗粒或薄膜的3倍光增强相比,这种光激发与等离子体激元激发之间的反馈显著提高了光到暗的催化速率,最高可达181倍,并且具有角度不变性。这些结果表明,超材料催化剂可以作为一种独特的光捕获装置,大幅增强重要反应的光催化作用。