Li Jinfeng, Burke Peter J
Department of Physics and Astronomy, University of California, Irvine, CA, 92697, USA.
Department of Chemical Engineering and Materials Science, University of California, Irvine, CA, 92697, USA.
Nat Commun. 2019 Aug 9;10(1):3598. doi: 10.1038/s41467-019-11589-9.
The nature of the electronic interface between a nanotube and solvated ions in a liquid electrolyte is governed by two distinct physical phenomena: quantum and chemical. The quantum component arises from the sharply varying electronic density of states and the chemical component arises from ion screening and diffusion. Here, using an integrated on-chip shield technology, we measure the capacitance of one to a few nanotubes quantitatively as a function of both bias potential (from -0.7 V to 0.3 V) and ionic concentration (from 10 mM to 1 M KCl) at room temperature. We determine the relative contributions of the quantum and electrochemical capacitance, and confirm the measurements with theoretical models. This represents an important measurement of the quantum effects on capacitance in reduced dimensional systems in contact with liquid electrolytes, an important and emerging theme in the interface between nanotechnology, energy, and life.
量子现象和化学现象。量子成分源于急剧变化的电子态密度,而化学成分则源于离子屏蔽和扩散。在此,我们利用集成的片上屏蔽技术,在室温下定量测量一到几根纳米管的电容,该电容是偏置电势(从 -0.7 V 到 0.3 V)和离子浓度(从 10 mM 到 1 M KCl)的函数。我们确定了量子电容和电化学电容的相对贡献,并用理论模型对测量结果进行了验证。这代表了对与液体电解质接触的低维系统中电容量子效应的一项重要测量,这是纳米技术、能源和生命界面中一个重要且新兴的主题。