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Journal ArticleDOI

Nonmetal-doping of noble metal-based catalysts for electrocatalysis.

Zhao Li, +4 more
- 08 Jul 2021 - 
- Vol. 13, Iss: 26, pp 11314-11324
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TLDR
In this article, a review of recent advancements in non-metal doping for electrocatalytic energy conversion is presented, where the doping effect on the atomic structure and intrinsic electronic/ionic state is systematically illustrated and the relationship with the electrocatalysis performance is also investigated.
Abstract
In response to the shortage of fossil fuels, efficient electrochemical energy conversion devices are attracting increasing attention, while the limited electrochemical performance and high cost of noble metal-based electrode materials remain a daunting challenge. The electrocatalytic performance of electrode materials is closely bound with their intrinsic electronic/ionic states and crystal structures. Apart from the nanoscale design and conductive composite strategies, heteroatom doping, particularly for nonmetal doping (e.g., hydrogen, boron, sulfur, selenium, phosphorus, and tellurium), is also another effective strategy to greatly promote the intrinsic activity of the electrode materials by tuning their atomic structures. From the perspective of electrocatalytic reactions, the effective atomic structure regulation could induce additional active sites, create rich defects, and optimize the adsorption capability, thereby contributing to the promotion of the electrocatalytic performance of noble metal-based electrocatalysts. Encouraged by the great progress achieved in this field, we have reviewed recent advancements in nonmetal doping for electrocatalytic energy conversion. Specifically, the doping effect on the atomic structure and intrinsic electronic/ionic state is also systematically illustrated and the relationship with the electrocatalytic performance is also investigated. It is believed that this review will provide guidance for the development of more efficient electrocatalysts.

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Citations
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Boosting oxygen evolution of layered double hydroxide through electronic coupling with ultralow noble metal doping.

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Recent Advances in Engineered Ru‐Based Electrocatalysts for the Hydrogen/Oxygen Conversion Reactions

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Ligand-free Synthesis of Noble Metal Nanocatalysts for Electrocatalysis

TL;DR: In this article , the authors comprehensively overview the ligand-free synthesis of noble metal nanocatalysts and their electrocatalytic applications and compare the advantages and disadvantages of these synthetic methods.
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Flowery ln2MnSe4 Novel Electrocatalyst Developed via Anion Exchange Strategy for Efficient Water Splitting

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Water splitting performance of metal and non-metal-doped transition metal oxide electrocatalysts

TL;DR: In this paper , the effect of the metal and non-metal-doping in transition metal oxide-based electrocatalysts for the rational design of high-performance catalysts in the future is discussed.
References
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Journal ArticleDOI

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Journal ArticleDOI

Engineering bunched Pt-Ni alloy nanocages for efficient oxygen reduction in practical fuel cells

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Journal ArticleDOI

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