Fenton-Inactive Cd 可实现高选择性 O2 衍生多米诺反应。

IF 3.784 3区 化学 Q1 Chemistry
Yitong Wang, Huilin Wang, Yulu Yang, Zhaomin Hao, Ruiping Deng, Qingsong Dong, Qingchao Liu, Hongpeng You, Shuyan Song
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引用次数: 0

摘要

推进和部署兼具出色催化活性、选择性和稳定性的芬顿活性镉仍然是一项严峻的挑战,这主要是由于难以调节这种完全占据的 d10s2 构型的固有电子状态和局部几何结构。在这项工作中,结合实验和理论计算发现,硼(B)的加入可以将 Cd0 的平均氧化态调整为 Cdδ+,从而促进电子定位,并实现与传统 d10 电子构型不同的电催化偏好。由此产生的 Cd(B) 催化剂在 O2 到 H2O2 的转化过程中具有很高的选择性(平均大于 90%),100 小时内的活性损失可以忽略不计,而且 H2O2 生成率极高(-100 mA 时为 15.5 mol∙gcat -1 h-1)。更令人意想不到的是,原位生成的 H2O2 与商业产品相比具有独特的优势,通过调节实用电流可选择性地将肉桂醛氧化为苯甲醛。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fenton-Inactive Cd Enables Highly Selective O2-Derived Domino Reaction.

Advancing and deploying Fenton-inactive Cd that combines excellent catalytic activity, selectivity, and stability remains a serious challenge, predominantly owing to the difficulty in regulating the intrinsic electronic states and local geometric structures of such fully occupied d10s2 configuration. In this work, a combination of experiments and theoretical calculations reveals that the incorporation of boron (B) enables the tuning of the average oxidation state of Cd0 to Cdδ+, facilitating electron localization and implementing a different electrocatalytic preference compared to conventional d10-electron configurations. The resulting Cd(B) catalyst demonstrates high selectivity (>90% on average) in the O2-to-H2O2 conversion, negligible activity loss over 100 h, and a superior H2O2 production rate (15.5 mol∙gcat -1 h-1 at -100 mA). More unexpectedly, the in situ generated H2O2 exhibits a unique advantage over commercial products, selectively oxidizing cinnamaldehyde to benzaldehyde by modulating the practical current.

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来源期刊
ACS Combinatorial Science
ACS Combinatorial Science CHEMISTRY, APPLIED-CHEMISTRY, MEDICINAL
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: The Journal of Combinatorial Chemistry has been relaunched as ACS Combinatorial Science under the leadership of new Editor-in-Chief M.G. Finn of The Scripps Research Institute. The journal features an expanded scope and will build upon the legacy of the Journal of Combinatorial Chemistry, a highly cited leader in the field.
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