Operando monitoring of gas bubble evolution in water electrolysis by single high-frequency impedance
文献信息
Kamran Dastafkan, Shuang Song, Quentin Meyer, Qiang Zhang, Yansong Shen, Chuan Zhao
Gas bubble management is highly demanded in water electrolysis and the lack of real-time monitoring of gas bubbles has slowed down the progress. Here, we demonstrate operando single frequency impedance measurement as an electrochemical means to detecting gas bubble evolution during water splitting reactions. At optimum high frequencies, where the contribution of faradaic charge transfer and mass transport as well as the phase component of the impedance are minimized, the dynamic variation of the resistance response can be correlated to the effect of gas bubbles. The amplitude of the resistance fluctuations indicates the impact of gas bubble evolution on the available active surface in a non-periodic pattern, where a bigger amplitude points to a larger number of gas bubbles and their sluggish growth and detachment over electrodes. Accordingly, the dynamic resistance variation varies with surface wettability and electrode configuration from flat two-dimensional to porous three-dimensional electrodes. Coupling this technique with operando optical microscopy unravels the correlation of the dynamic variation amplitude with gas bubble characteristics, i.e., size and release rate. The approach is applied to a bifunctional hetero-hierarchical Ni(OH)2@N-NiC catalyst to confirm the operando monitoring of ultrafast hydrogen and oxygen bubble evolution due to its superaerophobicity and anisotropic morphology. This facile operando approach is applied for monitoring gas bubble evolution in non-transparent full water electrolyser cells, and is useful for developing gas-repelling electrodes, as well as a range of gas evolving applications beyond.
期刊推荐

Drug Discovery Today

Journal of Saudi Chemical Society

Organic Process Research & Development

Chemistry Education Research and Practice

Chemical Communications

Current Opinion in Solid State & Materials Science

Russian Journal of Organic Chemistry

Nature Medicine

Russian Journal of Bioorganic Chemistry

Acta Materialia
相关文献
Regioselective Hula-twist photoisomerization of cinnamate esters in organic glass
Stefan Schieffer, John Pescatore, Richard Ulsh, Robert S. H. Liu
DOI: 10.1039/B411306N
Construction of a protein array on amyloid-like fibrils using co-assembly of designed peptides
Hiroyuki Kodama, Sachiko Matsumura, Taro Yamashita, Hisakazu Mihara
DOI: 10.1039/B409641J
Selective growth of a less stable polymorph of 2-iodo-4-nitroaniline on a self-assembled monolayer template
Rupa Hiremath, Stephen W. Varney, Jennifer A. Swift
DOI: 10.1039/B411649F
Direct intramolecular arylation of unactivated arenes: application to the synthesis of aporphine alkaloids
Marc Lafrance, Nicole Blaquière, Keith Fagnou
DOI: 10.1039/B410394G
Zeolite coated ATR crystals for new applications in FTIR-ATRspectroscopy
Zheng Wang, Margareta L. Larsson, Mattias Grahn, Allan Holmgren, Jonas Hedlund
DOI: 10.1039/B410314A
Synthesis and characterization of multiferroic BiFeO3 nanotubes
Tae-Jin Park, Yuanbing Mao
DOI: 10.1039/B409988E
Synthesis of meso-β doubly linked porphyrin tapes
Akihiko Tsuda, Yasuyuki Nakamura, Atsuhiro Osuka
DOI: 10.1039/B302032K
Palladium catalysed cyclisation–carbonylation of enynes to give cyclic γ,δ-unsaturated acids
Varinder K. Aggarwal, Mike Butters, Paul W. Davies
DOI: 10.1039/B300719G
In situ magnetic resonance imaging of electrically-induced water diffusion in a Nafion ionic polymer film
Richard T. Baker, Leila Naji, Karen Lochhead, John A. Chudek
DOI: 10.1039/B301039B
您可能还喜欢
如何处理含有8-氯咪唑并[1,2-A]吡嗪(CAS号:69214-33-1)的废料?
处理含有8-氯咪唑并[1,2-A]吡嗪的废料时,应首先将其收集并进行化学回收或降解。如果无法回收,需采用安全的化学处理方法,如中和、氧化还原或沉淀。处理过程中需...
Calhex 231 hydrochloride(CAS号:2387505-78-2)适用哪些法规指南?
Calhex 231 hydrochloride 需要遵循《全球化学品统一分类和标签制度》(GHS)的分类和标签要求,以及欧盟的《化学品注册、评估、授权和限制条...
11-Beta,17-alpha,21-三羟基-5-beta-孕烯-3,20-二酮(CAS号:1482-50-4)的物理化学性质是什么?
11-Beta,17-alpha,21-三羟基-5-beta-孕烯-3,20-二酮是一种无色结晶性粉末,分子量为372.45 g/mol。该化合物在水中的溶解度...
处理5-异丙基-1,3,4-恶二唑-2-羧酸(CAS号:944907-13-5)时应注意哪些实验室安全事项?
处理5-异丙基-1,3,4-恶二唑-2-羧酸时应注意以下安全事项:穿戴适当的个人防护装备,包括实验室外套、手套和护目镜;操作应在通风橱中进行,以减少吸入或接触有...
benzyl 3-bromopropanoate(CAS号:90841-55-7)安全吗?
Benzyl 3-bromopropanoate属于有毒物质,吸入、摄入或皮肤接触均可能对人体造成伤害。操作时应佩戴防护眼镜、口罩和手套,避免吸入蒸汽和直接接触...
什么是(R)-N-苄氧羰基-3,4-二氢-1H-异喹啉羧酸(CAS号:151004-88-5)?
(R)-N-苄氧羰基-3,4-二氢-1H-异喹啉羧酸是一种含有苄氧羰基和异喹啉环结构的化合物,分子式为C17H15NO3。它是一种有机化合物,具有一定的生物活性...
在合成中是否有1-苄基吡啶嗡-3-羧酸盐(CAS号:15990-43-9)的替代品?
可以考虑使用1-苄基吡啶-3-羧酸盐作为1-苄基吡啶嗡-3-羧酸盐的替代品。此外,还可以探索其他类似物,如1-苄基吡啶-3-氨基甲酸酯等。具体的替代品选择需根据...
(2,6-二甲基吡啶-3-基)甲醇(CAS号:582303-10-4)安全吗?
(2,6-二甲基吡啶-3-基)甲醇在使用时需注意安全,应避免吸入其蒸汽,接触皮肤和眼睛。操作应在通风良好的环境中进行,佩戴适当的个人防护装备。
5-溴-2-乙烯基吡啶(CAS号:226883-52-9)的物理化学性质是什么?
5-溴-2-乙烯基吡啶是一种有机化合物,外观为白色固体,具有良好的结晶性。分子量约为190.03 g/mol。它的溶解性在水中较差,但在有机溶剂如二氯甲烷、甲醇...
2-羟基-3-硝基-5-甲基吡啶(CAS号:7464-14-4)应用于哪些行业?
2-羟基-3-硝基-5-甲基吡啶主要应用于医药、聚合物和半导体行业。在医药领域,它可以用作合成其他药物的中间体。在聚合物领域,它可以作为功能性单体参与聚合反应,...


![N,N'-1,2-Ethanediylbis[2-(vinylsulfonyl)acetamide] structure N,N'-1,2-Ethanediylbis[2-(vinylsulfonyl)acetamide] structure](https://cnstatic.chemtradehub.com/structs/667/66710-66-5-b556.webp)


