p-block doped semi-metallic xenes as highly selective and efficient transition-metal free single atom catalysts for electrochemical CO reduction

文献信息

发布日期 2023-12-15
DOI 10.1039/D3TA05155B
影响因子 12.732
作者

Huong T. D. Bui, Tore Brinck


查看原文

摘要

The development of robust and inexpensive catalysts for the electrochemical CO reduction reaction (CORR) is key for sustainable production of valuable chemicals, yet it remains a long-standing challenge. Herein, we conduct a systematic theoretical investigation on p-block doping of semi-metallic xene monolayers to afford transition metal free catalysts for the CORR. Silicene (Si) and germanene (Ge) are suitable platforms for capturing the dopant (B/Al) to ensure high stability. Our single atom catalysts (SACs) are promising candidates for CORR due to their favorable initial CO adsorption and the selectivity of CO reduction over H2 evolution. B@Si, Al@Si, Al@Ge and B@Ge exhibit superior CORR catalytic activity with a limiting potential UL of 0.04, −0.39, −0.40, and −0.40 V, respectively. Notably, B@Si is identified as the best CORR electrocatalyst with an overpotential of less than 0.1 V. B@Si, Al@Si, Al@Ge exhibit high CORR selectivity towards CH3OH production, whereas B@Ge is predicted to form mainly CH4. The fundamental principles behind the outstanding CORR catalytic enhancement are disclosed by analyzing the structural and electronic configurations of two key intermediates, CO* and CHO*. CO* binds the dopant with moderate strength through a combination of σ-donation and π-backdonation unique for a transition metal free catalyst, whereas CHO* adsorbs strongly to the surface by the simultaneous binding to two neighboring atomic sites; consequently, the binding of the two intermediates breaks the scaling relation that limits the CORR activity of conventional catalysts. The optimal adsorption behaviors are attributed to the surface charge modulation induced by the substitutional doping. Hence, these findings may facilitate rational design of xene-based SACs for CORR and advance other catalytic applications.

相关文献

Front cover

2024-01-18 Cover

DOI: 10.1039/D4CC90027H

Photoinduced fluorescence modulation through controllable intramolecular [2+2] photocycloaddition in single molecules and molecular aggregates

Yuzhen Wu, Xinni Ping, Chuangye Yao, Penglei Wu, Zhengdong Han, Xin Peng, Jiale Zhan, Hui Feng, Zhaosheng Qian

2024-01-02 Communication

DOI: 10.1039/D3CC05846H

Ni(OH)2 nanosheets decorated with FeCoPi on NiO heterostructures: tunable intrinsic electronic structures for improved overall water splitting

Sundaramoorthy Marimuthu, Ayyavu Shankar, Govindhan Maduraiveeran

2023-12-21 Communication

DOI: 10.1039/D3CC04685K

CRISPR-Cas12a-enhanced mass spectrometric DNA nanomachine for HPV-16 detection in human serum

Yueli Hu, Liwei Liu, Chaoqun Wang, Jing Zhou, Rui Liu

2023-12-18 Communication

DOI: 10.1039/D3CC05949A

Efficient regio- and stereo-selective C–H bond hydroxylation of steroids using an engineered heme-thiolate peroxygenase biocatalyst

Jinia Akter, Eva F. Hayball, Stephen G. Bell

2023-10-05 Communication

DOI: 10.1039/D3CY01223A

Unexpectedly stable homopurine parallel triplex of SNA:RNA*SNA and l-aTNA:RNA*l-aTNA

Siyuan Lao, Jumpei Ariyoshi, Fuminori Sato, Hiroyuki Asanuma

2023-12-21 Communication

DOI: 10.1039/D3CC05555H

Synthesis of SiN/SiS-heterocycles via the reactions of a bis-silylene with isocyanate/isothiocyanate molecules

Rui Liu, Kartik Chandra Mondal, Chenfeng Wang, Sonam Suthar, Zijie Fang, Darui Zuo

2024-01-01 Communication

DOI: 10.1039/D3CC04950G

Peptide coupling using recyclable bicyclic benziodazolone

Daigo Uehara, Sota Adachi, Akira Tsubouchi, Yohei Okada, Viktor V. Zhdankin, Akira Yoshimura, Akio Saito

2023-12-18 Communication

DOI: 10.1039/D3CC04431A

Fluorophosphoniums as Lewis acids in organometallic catalysis: application to the carbonylation of β-lactones‡

Marie-Hélène Pietraru, Louise Ponsard, Nicolas Lentz, Pierre Thuéry, Emmanuel Nicolas, Thibault Cantat

2024-01-04 Communication

DOI: 10.1039/D3CC04282K

Reduction of intracellular oxidative stress with a copper-incorporated layered double hydroxide

Adél Szerlauth, Tamara Madácsy, Gergely Ferenc Samu, Péter Bíró, Miklós Erdélyi, Gábor Varga, Zhi Ping Xu, József Maléth, István Szilágyi

2024-01-02 Communication

DOI: 10.1039/D3CC05762C

您可能还喜欢

化合物问答

十二烷基磺酸钠(CAS号:2386-53-0)的主要用途是什么?

十二烷基磺酸钠主要用作表面活性剂,广泛应用于洗涤剂、肥皂、化妆品和工业清洁产品中。它能有效去除油脂和污垢,常用于制造洗发水、沐浴露、洗衣粉和金属清洗剂。此外,它...

2386-53-01-Dodecanesulfonic a...
化合物问答

5-羟基异喹啉(CAS号:2439-04-5)适用哪些法规指南?

5-羟基异喹啉作为化学品,主要适用的法规包括GHS全球化学品统一分类和标签制度,REACH法规等。GHS将5-羟基异喹啉分类为皮肤腐蚀/刺激类别2,严重眼损伤/...

2439-04-55-Isoquinolinol
化合物问答

在合成中是否有FIDAS-5 | Wnt(CAS号:1391934-98-7)的替代品?

合成中可以考虑使用类似结构的化合物,如4-[(E)-2-(2-氯-6-氟苯基)乙烯基]-N-甲基苯胺的类似物或衍生物作为替代品。这类化合物可能具有相似的生物活性...

1391934-98-74-[(E)-2-(2-Chloro-6...
化合物问答

(R)-tert-Butyl 2-(5-bromo-1H-imidazol-2-yl)pyrrolidine-1-carboxylate(CAS号:1370600-56-8)通常如何合成?

该化合物通常通过如下步骤合成:首先,将4-溴-1H-咪唑与对甲苯磺酸在乙酸乙酯中反应,得到中间体5-溴-1H-咪唑-2-甲酸乙酯。然后,该中间体与2-甲基-2-...

1370600-56-82-Methyl-2-propanyl ...
化合物问答

处理4-(吡咯烷-1-基)环己酮(CAS号:10421-18-8)时应注意哪些实验室安全事项?

处理4-(吡咯烷-1-基)环己酮时,应佩戴手套、护目镜和实验室外套,以防止直接接触或吸入。在通风橱中操作,确保良好的通风条件。一旦发生泄漏,应立即清理并使用适当...

10421-18-84-(Pyrrolidin-1-yl)c...
化合物问答

如何处理含有异麦芽糖醇(CAS号:534-73-6)的废料?

含有异麦芽糖醇的废液应首先进行分类收集,避免与其他化学品混合。对于小规模的废液,可以通过焚烧或加入特定的化学试剂进行无害化处理。对于大规模的废液,建议联系专业的...

534-73-66-O-alpha-D-Glucopyr...
化合物问答

7-甲基壬酸(CAS号:41653-89-8)的主要用途是什么?

7-甲基壬酸主要用于有机合成领域,作为合成其他化合物的原料。此外,它还可能作为一种中间体用于药品制造和香料合成,但具体用途需要根据其具体的化学结构和反应特性来确...

41653-89-87-Methylnonanoic aci...
化合物问答

N-甲氧基-N-甲基甲基吡啶羧酰胺(CAS号:148493-07-6)应用于哪些行业?

N-甲氧基-N-甲基甲基吡啶羧酰胺在医药领域有一定的应用,作为一种潜在的药物前体或中间体。此外,该化合物也可能应用于聚合物改性剂、传感器材料等。由于其独特的化学...

148493-07-6N-Methoxy-N-methylpi...
化合物问答

什么是惕各酸香叶酯(CAS号:7785-33-3)?

惕各酸香叶酯是一种化合物,化学名称为(2E)-3,7-二甲基-2,6-辛二烯-1-基(2E)-2-甲基-2-丁烯酸酯。它是一种具有香叶香气的化合物,分子式为C1...

7785-33-3(2E)-3,7-Dimethyl-2,...
化合物问答

1-环丁基哌嗪(CAS号:132800-13-6)安全吗?

1-环丁基哌嗪在适当的操作条件下是相对安全的,但如遇明火或高热会释放有毒气体。操作时应佩戴防护眼镜和手套,避免吸入或接触皮肤、眼睛。

132800-13-61-Cyclobutylpiperazi...

来源期刊

Journal of Materials Chemistry A

Journal of Materials Chemistry A
CiteScore: 19.5
自引率: 4.7%
年发文量: 2211

Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. The journals have a strong history of publishing quality reports of interest to interdisciplinary communities and providing an efficient and rigorous service through peer review and publication. The journals are led by an international team of Editors-in-Chief and Associate Editors who are all active researchers in their fields. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C. More than one Journal of Materials Chemistry journal may be suitable for certain fields and researchers are encouraged to submit their paper to the journal that they feel best fits for their particular article. Example topic areas within the scope of Journal of Materials Chemistry A are listed below. This list is neither exhaustive nor exclusive. Artificial photosynthesis Batteries Carbon dioxide conversion Catalysis Fuel cells Gas capture/separation/storage Green/sustainable materials Hydrogen generation Hydrogen storage Photocatalysis Photovoltaics Self-cleaning materials Self-healing materials Sensors Supercapacitors Thermoelectrics Water splitting Water treatment

推荐供应商

免责声明
本页面提供的学术期刊信息仅供参考和研究使用。我们与任何期刊出版商均无关联,也不处理投稿事宜。如有投稿相关咨询,请直接联系相关期刊出版商。
如发现页面信息有误,请发送邮件至 support@chemtradehub.com 联系我们。我们将及时核实并处理您的问题。