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Laser-ablation assisted strain engineering of gold nanoparticles for selective electrochemical CO2 reduction

机译:激光烧蚀辅助工程应变的黄金纳米粒子对选择性电化学二氧化碳减少

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摘要

Strain engineering can endow versatile functions, such as refining d-band center and inducing lattice mismatch, on catalysts for a specific reaction. To this end, effective strain engineering for introducing strain on the catalyst is highly sought in various catalytic applications. Herein, a facile laser ablation in liquid (LAL) strategy is adopted to synthesize gold nanoparticles (Au NPs) with rich compressive strain (Au-LAL) for electrochemical CO2 reduction. It is demonstrated that the rich compressive strain can greatly promote the electrochemical CO2 reduction performance of Au, achieving a CO partial current density of 24.9 mA cm−2 and a maximum CO faradaic efficiency of 97% at −0.9 V for Au-LAL, while it is only 2.77 mA cm−2 and 16.2% for regular Au nanoparticles (Au-A). As revealed by the in situ Raman characterization and density functional theory calculations, the presence of compressive strain can induce a unique electronic structure change in Au NPs, significantly up-shifting the d-band center of Au. Such a phenomenon can greatly enhance the adsorption strength of Au NPs toward the key intermediate of CO2 reduction (i.e., *COOH). More interestingly, we demonstrate that, an important industrial chemical feedstock, syngas, can be obtained by simply mixing Au-LAL with Au-A in a suitable ratio. This work provides a promising method for introducing strain in metal NPs and demonstrates the important role of strain in tuning the performance and selectivity of catalysts.
机译:应变工程可以赋予通用的函数,如炼油d带中心和诱导晶格不匹配,为一个特定的催化剂的反应。工程上引入应变催化剂是高度寻求在不同催化应用程序。采用合成液体(LAL)策略金纳米粒子与丰富的抗压(Au NPs)应变(Au-LAL)电化学二氧化碳减少。压缩应变可以极大地促进非盟的二氧化碳电化学还原性能,实现公司的部分电流密度24.9 mA厘米−2和最大公司感应电流的效率为97%Au-LAL−0.9 V,而只有2.77 mA厘米−2 16.2%,常规Au纳米颗粒(Au-A)。特征和密度泛函理论计算,压应变的存在可以产生一个独特的电子结构变化在非盟NPs,重要的是一个错误的翻译导致d带非盟的中心。加强非盟NPs的吸附强度的方向二氧化碳减排的关键中间(即*羧基)。一个重要的化工原料,可以通过简单地混合Au-LAL合成气,Au-A在一个合适的比例。一个有前途的方法,引入应变金属NPs和演示的重要作用在调优性能和选择性的压力的催化剂。

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