明胶诱导合成菌株工程球形Cu2O纳米颗粒用于硝酸盐高效还原为氨

IF 12.1 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Small Pub Date : 2025-01-29 DOI:10.1002/smll.202411005
Ji Li, Kai Wu, Jing Heng, Lintao Zhu, Xuechuan Wang, Qingxin Han, Taotao Qiang
{"title":"明胶诱导合成菌株工程球形Cu2O纳米颗粒用于硝酸盐高效还原为氨","authors":"Ji Li,&nbsp;Kai Wu,&nbsp;Jing Heng,&nbsp;Lintao Zhu,&nbsp;Xuechuan Wang,&nbsp;Qingxin Han,&nbsp;Taotao Qiang","doi":"10.1002/smll.202411005","DOIUrl":null,"url":null,"abstract":"<p>The electrochemical reduction of nitrate to ammonia offers an environmentally sustainable pathway for nitrogen fixation. However, achieving both efficiency and selectivity in nitrate reduction presents a formidable challenge, due to the involvement of sluggish multielectron transfer processes. Herein, the successful synthesis of spherical Cu₂O nanoparticles (s-Cu₂O) exhibiting significant compressive strain effects, achieved through a one-pot method using gelatin as a structural modifier, is reported. The s-Cu₂O catalyst demonstrates exceptional electrochemical performance for nitrate reduction reaction (NO<sub>3</sub>RR), achieving a Faradaic efficiency (FE<sub>NH3</sub>) of 95.07%, ammonia selectivity of 92.03%, a nitrate conversion rate of 97.77%, and a yield rate of 284.83 µmol h⁻¹ cm⁻<sup>2</sup> at −0.8 V versus reversible hydrogen electrode (vs. RHE) for ammonia production. Structural characterization and density functional theory calculations reveal that compressive strain plays a critical role in modulating the electronic structure of the catalyst, thereby activating the *NO intermediate in the potential determining step and effectively suppressing the hydrogen evolution reaction. Furthermore, it is implemented in a Zn-NO<sub>3</sub><sup>−</sup> battery, and the test results indicate that the battery achieved a peak power density of 3.95 mW cm<sup>−2</sup> at a potential of 0.129 V (vs Zn/Zn<sup>2</sup>⁺), illustrating its excellent electrochemical and functional efficacy. This work introduces a novel strategy for the rational design of high-performance electrocatalysts through strain engineering, offering broad implications for energy-efficient ammonia synthesis, and sustainable nitrogen cycling.</p>","PeriodicalId":228,"journal":{"name":"Small","volume":"21 9","pages":""},"PeriodicalIF":12.1000,"publicationDate":"2025-01-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Gelatin-Induced Synthesis of Strain-Engineered Spherical Cu2O Nanoparticles for Efficient Nitrate Reduction to Ammonia\",\"authors\":\"Ji Li,&nbsp;Kai Wu,&nbsp;Jing Heng,&nbsp;Lintao Zhu,&nbsp;Xuechuan Wang,&nbsp;Qingxin Han,&nbsp;Taotao Qiang\",\"doi\":\"10.1002/smll.202411005\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The electrochemical reduction of nitrate to ammonia offers an environmentally sustainable pathway for nitrogen fixation. However, achieving both efficiency and selectivity in nitrate reduction presents a formidable challenge, due to the involvement of sluggish multielectron transfer processes. Herein, the successful synthesis of spherical Cu₂O nanoparticles (s-Cu₂O) exhibiting significant compressive strain effects, achieved through a one-pot method using gelatin as a structural modifier, is reported. The s-Cu₂O catalyst demonstrates exceptional electrochemical performance for nitrate reduction reaction (NO<sub>3</sub>RR), achieving a Faradaic efficiency (FE<sub>NH3</sub>) of 95.07%, ammonia selectivity of 92.03%, a nitrate conversion rate of 97.77%, and a yield rate of 284.83 µmol h⁻¹ cm⁻<sup>2</sup> at −0.8 V versus reversible hydrogen electrode (vs. RHE) for ammonia production. Structural characterization and density functional theory calculations reveal that compressive strain plays a critical role in modulating the electronic structure of the catalyst, thereby activating the *NO intermediate in the potential determining step and effectively suppressing the hydrogen evolution reaction. Furthermore, it is implemented in a Zn-NO<sub>3</sub><sup>−</sup> battery, and the test results indicate that the battery achieved a peak power density of 3.95 mW cm<sup>−2</sup> at a potential of 0.129 V (vs Zn/Zn<sup>2</sup>⁺), illustrating its excellent electrochemical and functional efficacy. This work introduces a novel strategy for the rational design of high-performance electrocatalysts through strain engineering, offering broad implications for energy-efficient ammonia synthesis, and sustainable nitrogen cycling.</p>\",\"PeriodicalId\":228,\"journal\":{\"name\":\"Small\",\"volume\":\"21 9\",\"pages\":\"\"},\"PeriodicalIF\":12.1000,\"publicationDate\":\"2025-01-29\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Small\",\"FirstCategoryId\":\"88\",\"ListUrlMain\":\"https://onlinelibrary.wiley.com/doi/10.1002/smll.202411005\",\"RegionNum\":2,\"RegionCategory\":\"材料科学\",\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"Q1\",\"JCRName\":\"CHEMISTRY, MULTIDISCIPLINARY\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Small","FirstCategoryId":"88","ListUrlMain":"https://onlinelibrary.wiley.com/doi/10.1002/smll.202411005","RegionNum":2,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0

摘要

电化学还原硝酸盐为氨提供了一个环境可持续的固氮途径。然而,由于涉及缓慢的多电子转移过程,实现硝酸盐还原的效率和选择性提出了一个巨大的挑战。本文报道了用明胶作为结构改性剂,通过一锅法成功合成了具有显著压缩应变效应的球形Cu₂O纳米颗粒(s-Cu₂O)。s-Cu₂O催化剂在硝酸还原反应(NO3RR)中表现出优异的电化学性能,法拉第效率(FENH3)为95.07%,氨选择性为92.03%,硝酸盐转化率为97.77%,在−0.8 V条件下,相对于可逆氢电极(相对于RHE)制氨的产率为284.83µmol h⁻¹cm⁻2。结构表征和密度泛函理论计算表明,压缩应变在调节催化剂的电子结构中起着关键作用,从而在电位决定步骤中激活*NO中间体,有效抑制析氢反应。并在Zn- no3−电池中实现,测试结果表明,该电池在0.129 V (vs Zn/Zn2 +)电位下的峰值功率密度为3.95 mW cm−2,证明了其优异的电化学和功能功效。本研究通过应变工程为合理设计高性能电催化剂提供了一种新的策略,为高效氨合成和可持续氮循环提供了广泛的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gelatin-Induced Synthesis of Strain-Engineered Spherical Cu2O Nanoparticles for Efficient Nitrate Reduction to Ammonia

Gelatin-Induced Synthesis of Strain-Engineered Spherical Cu2O Nanoparticles for Efficient Nitrate Reduction to Ammonia

The electrochemical reduction of nitrate to ammonia offers an environmentally sustainable pathway for nitrogen fixation. However, achieving both efficiency and selectivity in nitrate reduction presents a formidable challenge, due to the involvement of sluggish multielectron transfer processes. Herein, the successful synthesis of spherical Cu₂O nanoparticles (s-Cu₂O) exhibiting significant compressive strain effects, achieved through a one-pot method using gelatin as a structural modifier, is reported. The s-Cu₂O catalyst demonstrates exceptional electrochemical performance for nitrate reduction reaction (NO3RR), achieving a Faradaic efficiency (FENH3) of 95.07%, ammonia selectivity of 92.03%, a nitrate conversion rate of 97.77%, and a yield rate of 284.83 µmol h⁻¹ cm⁻2 at −0.8 V versus reversible hydrogen electrode (vs. RHE) for ammonia production. Structural characterization and density functional theory calculations reveal that compressive strain plays a critical role in modulating the electronic structure of the catalyst, thereby activating the *NO intermediate in the potential determining step and effectively suppressing the hydrogen evolution reaction. Furthermore, it is implemented in a Zn-NO3 battery, and the test results indicate that the battery achieved a peak power density of 3.95 mW cm−2 at a potential of 0.129 V (vs Zn/Zn2⁺), illustrating its excellent electrochemical and functional efficacy. This work introduces a novel strategy for the rational design of high-performance electrocatalysts through strain engineering, offering broad implications for energy-efficient ammonia synthesis, and sustainable nitrogen cycling.

求助全文
通过发布文献求助,成功后即可免费获取论文全文。 去求助
来源期刊
Small
Small 工程技术-材料科学:综合
CiteScore
17.70
自引率
3.80%
发文量
1830
审稿时长
2.1 months
期刊介绍: Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments. With a remarkable 2022 Journal Impact Factor of 13.3 (Journal Citation Reports from Clarivate Analytics, 2023), Small remains among the top multidisciplinary journals, covering a wide range of topics at the interface of materials science, chemistry, physics, engineering, medicine, and biology. Small's readership includes biochemists, biologists, biomedical scientists, chemists, engineers, information technologists, materials scientists, physicists, and theoreticians alike.
×
引用
GB/T 7714-2015
复制
MLA
复制
APA
复制
导出至
BibTeX EndNote RefMan NoteFirst NoteExpress
×
提示
您的信息不完整,为了账户安全,请先补充。
现在去补充
×
提示
您因"违规操作"
具体请查看互助需知
我知道了
×
提示
确定
请完成安全验证×
copy
已复制链接
快去分享给好友吧!
我知道了
右上角分享
点击右上角分享
0
联系我们:info@booksci.cn Book学术提供免费学术资源搜索服务,方便国内外学者检索中英文文献。致力于提供最便捷和优质的服务体验。 Copyright © 2023 布克学术 All rights reserved.
京ICP备2023020795号-1
ghs 京公网安备 11010802042870号
Book学术文献互助
Book学术文献互助群
群 号:604180095
Book学术官方微信