MXenes公司
材料科学
纳米技术
插层(化学)
电化学储能
电化学
纳米尺度
碳化钛
电荷(物理)
储能
锂(药物)
离子
纳米结构
钛
氧化还原
化学成像
化学工程
X射线光电子能谱
无机化学
电极
化学气相沉积
限制
超级电容器
化学反应
作者
Namrata Sharma,Louis Godeffroy,Peer Bärmann,Faidra Amargianou,Andreas Weisser,Zoé Dessoliers,Mailis Lounasvuori,Markus Weigand,Tristan Petit
摘要
Pseudocapacitive materials store electrochemical energy through fast and reversible surface charge transfer reactions. Titanium carbide MXenes are two-dimensional materials which have shown redox or intercalation pseudocapacitive properties depending on the electrolyte. Nevertheless, the intrinsic pseudocapacitive charging mechanism in individual MXene flakes remains unresolved. Here, we employ in situ scanning transmission X-ray microscopy (STXM) to map the local chemical changes in individual Ti3C2Tx MXene flakes during spontaneous and electrochemical intercalation of protons and lithium ions in aqueous electrolytes. Our investigations reveal that proton and lithium-ion intercalation induces a reduction and an oxidation, respectively, of the titanium atoms in the MXene. This difference reveals a profoundly different chemical origin between redox and intercalation pseudocapacitive processes. By elucidating the interplay between ion hydration, MXene surface chemistry and flake morphology, our study highlights the relevance of chemical imaging in single entities for the fundamental understanding of electrochemical charge storage mechanisms.
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