Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance

Altering a material's catalytic properties would require identifying structural features that deliver electrochemically active surfaces. Single-crystalline porous materials, combining the advantages of long-range ordering of bulk crystals and large surface areas of porous materials, would creat...

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Main Authors: Zhang, Feiyan, Xi, Shaobo, Lin, Guoming, Hu, Xiuli, Lou, David Xiong Wen, Xie, Kui
Other Authors: School of Chemical and Biomedical Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/150407
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1504072021-06-04T07:57:59Z Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance Zhang, Feiyan Xi, Shaobo Lin, Guoming Hu, Xiuli Lou, David Xiong Wen Xie, Kui School of Chemical and Biomedical Engineering Engineering::Materials Active Moieties Electrocatalysis Altering a material's catalytic properties would require identifying structural features that deliver electrochemically active surfaces. Single-crystalline porous materials, combining the advantages of long-range ordering of bulk crystals and large surface areas of porous materials, would create sufficient active surfaces by stabilizing 2D active moieties confined in lattice and may provide an alternative way to create high-energy surfaces for electrocatalysis that are kinetically trapped. Here, a radical concept of building active metal–nitrogen moieties with unsaturated nitrogen coordination on a porous surface by directly growing metallic porous metal nitride (Fe3N and Ta5N6) single crystals at unprecedented 2 cm scale is reported. These porous single crystals demonstrate exceptionally high conductivity of 0.1–1.0 × 105 S cm−1, while the atomic surface layers of the porous crystals are confirmed to be an Fe termination layer for Fe3N and a Ta termination layer for Ta5N6. The unsaturated metal–nitrogen moieties (Fe6–N and Ta5–N3) with unique electronic structures demonstrate enhanced electrocatalysis performance and durability. 2021-06-04T07:57:58Z 2021-06-04T07:57:58Z 2019 Journal Article Zhang, F., Xi, S., Lin, G., Hu, X., Lou, D. X. W. & Xie, K. (2019). Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance. Advanced Materials, 31(7), 1806552-. https://dx.doi.org/10.1002/adma.201806552 0935-9648 0000-0002-5557-4437 https://hdl.handle.net/10356/150407 10.1002/adma.201806552 30575143 2-s2.0-85058936007 7 31 1806552 en Advanced Materials © 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Active Moieties
Electrocatalysis
spellingShingle Engineering::Materials
Active Moieties
Electrocatalysis
Zhang, Feiyan
Xi, Shaobo
Lin, Guoming
Hu, Xiuli
Lou, David Xiong Wen
Xie, Kui
Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
description Altering a material's catalytic properties would require identifying structural features that deliver electrochemically active surfaces. Single-crystalline porous materials, combining the advantages of long-range ordering of bulk crystals and large surface areas of porous materials, would create sufficient active surfaces by stabilizing 2D active moieties confined in lattice and may provide an alternative way to create high-energy surfaces for electrocatalysis that are kinetically trapped. Here, a radical concept of building active metal–nitrogen moieties with unsaturated nitrogen coordination on a porous surface by directly growing metallic porous metal nitride (Fe3N and Ta5N6) single crystals at unprecedented 2 cm scale is reported. These porous single crystals demonstrate exceptionally high conductivity of 0.1–1.0 × 105 S cm−1, while the atomic surface layers of the porous crystals are confirmed to be an Fe termination layer for Fe3N and a Ta termination layer for Ta5N6. The unsaturated metal–nitrogen moieties (Fe6–N and Ta5–N3) with unique electronic structures demonstrate enhanced electrocatalysis performance and durability.
author2 School of Chemical and Biomedical Engineering
author_facet School of Chemical and Biomedical Engineering
Zhang, Feiyan
Xi, Shaobo
Lin, Guoming
Hu, Xiuli
Lou, David Xiong Wen
Xie, Kui
format Article
author Zhang, Feiyan
Xi, Shaobo
Lin, Guoming
Hu, Xiuli
Lou, David Xiong Wen
Xie, Kui
author_sort Zhang, Feiyan
title Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
title_short Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
title_full Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
title_fullStr Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
title_full_unstemmed Metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
title_sort metallic porous iron nitride and tantalum nitride single crystals with enhanced electrocatalysis performance
publishDate 2021
url https://hdl.handle.net/10356/150407
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