Carbon Energy两周年|催化篇
Carbon Energy两周年
为了庆祝Carbon Energy创刊两周年,我们为各位读者汇总了催化合集,欢迎各位读者阅读!
☆ 电催化 ☆
1.Dai,Liming et al.
Ten years of carbon‐based metal‐free electrocatalysts.
Carbon Energy, 2019, 1(1), 19-31.
10.1002/cey2.5
2.Wang,Xin et al.
Optimizing interfacial electronic coupling with metal oxide to activate inert polyaniline for superior electrocatalytic hydrogen generation.
Carbon Energy. 2019, 1(1), 77-84.
10.1002/cey2.3
3.Jang,Ho Won et al.
Reduced graphene oxide‐based materials for electrochemical energy conversion reactions.
Carbon Energy. 2019, 1(1), 85-108.
10.1002/cey2.13
4.Won,Da Hye et al.
Progress in development of electrocatalyst for CO2 conversion to selective CO production.
Carbon Energy. 2020, 2(1), 72-98.
10.1002/cey2.27
5.Shen,Peikang et al.
Nonprecious metal's graphene‐supported electrocatalysts for hydrogen evolution reaction: Fundamentals to applications.
Carbon Energy, 2020, 2(1), 99-121.
10.1002/cey2.26
6.Soo Young Kim et al.
Graphene‐based catalysts for electrochemical carbon dioxide reduction
Carbon Energy. 2020, 2(2), 158-175.
10.1002/cey2.41
7. Liu,Bin et al.
Design of hierarchical, three‐dimensional free‐standing single‐atom electrode for H2O2 production in acidic media.
Carbon Energy. 2020, 2(2), 276-282.
10.1002/cey2.33
8.Yang,Jun et al.
Surface composition dominates the electrocatalytic reduction of CO2 on ultrafine CuPd nanoalloys.
Carbon Energy. 2020, 2(3), 443- 451.
10.1002/cey2.38
9.Yao,Xiangdong et al.
Controllable synthesis of Fe–N4 species for acidic oxygen reduction.
Carbon Energy. 2020, 2(3), 452-460.
10.1002/cey2.47
10.Sun,Xueliang et al.
Recent advances and strategies in the stabilization of single‐atom catalysts for electrochemical applications.
Carbon Energy, 2020, 2(4), 488-520.
10.1002/cey2.46
11.Sun,Shuhui et al.
Biomass‐derived nonprecious metal catalysts for oxygen reduction reaction: The demand‐oriented engineering of active sites and structures.
Carbon Energy, 2020, 2(4), 561-581.
10.1002/cey2.73
12.Zhao,Chuan et al.
Design and operando/in situ characterization of precious‐metal‐free electrocatalysts for alkaline water splitting.
Carbon Energy, 2020, 2(4), 582-613.
10.1002/cey2.79
13.Liu,Lifeng et al.
Stable overall water splitting in an asymmetric acid/alkaline electrolyzer comprising a bipolar membrane sandwiched by bifunctional cobalt‐nickel phosphide nanowire electrodes.
Carbon Energy, 2020, 2(4), 646-655.
10.1002/cey2.56
14.Qiao,Jinli et al.
Carbon‐based metal‐free catalysts for electrochemical CO2 reduction: Activity, selectivity, and stability.
Carbon Energy, 2021, 3(1), 24-49.
10.1002/cey2.87
15.Piao,Yuanzhe et al.
Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction.
Carbon Energy, 2021, 3(1), 66-100.
10.1002/cey2.80
16.Lu,Xiaofeng et al.
Electronic modulation and interface engineering of electrospun nanomaterials‐based electrocatalysts toward water splitting.
Carbon Energy, 2021, 3(1), 101-128.
10.1002/cey2.85
17.Jeon,Tae‐Yeol Jeon et al.
Electrochemical determination of the degree of atomic surface roughness in Pt–Ni alloy nanocatalysts for oxygen reduction reaction.
Carbon Energy, 2021, 3(2), 375-383.
10.1002/cey2.82
18.Joseph B. Tracy et al.
Sulfidation and selenidation of nickel nanoparticles.
Carbon Energy, 2021, 3(4), 582-589.
10.1002/cey2.83
19.Zhang,Qichun et al.
Carbon material-based anodes in the microbial fuel cells.
Carbon Energy, 2021, 3(3), 449-472.
10.1002/cey2.113
20.Sara Cavaliere et al.
Correlation between the surface characteristics of carbon supports and their electrochemical stability and performance in fuel cell cathodes.
Carbon Energy, 2021, 3(4), 654-665.
10.1002/cey2.109
☆ 光催化 ☆
1.Yu,Jiaguo et al.
Review on DFT calculation of s‐triazine‐based carbon nitride.
Carbon Energy, 2019, 1(1), 32-56.
10.1002/cey2.1
2.Park,Jong Hyeok et al.
Black TiO2: What are exact functions of disorder layer.
Carbon Energy. 2020, 2(1), 44-53.
10.1002/cey2.32
3.Zhu,Yongfa et al.
Photocatalytic activity enhanced via surface hybridization.
Carbon Energy. 2020, 2(3), 308-349.
10.1002/cey2.66
☆光电催化 ☆
1.Liang,Ji et al.
Graphitic carbon nitride (g‐C3N4)‐based nanosized heteroarrays: Promising materials for photoelectrochemical water splitting.
Carbon Energy. 2020, 2(2), 223-250.
10.1002/cey2.48
☆光热催化 ☆
1.Zhu,Yongfa et al.
Research progress on methane conversion coupling photocatalysis and thermocatalysis.
Carbon Energy, 2021, 3(4), 519-540.
10.1002/cey2.127