单层
质子
电导率
石墨烯
材料科学
膜
化学物理
离子
氮化硼
六方氮化硼
质子输运
纳米技术
化学
物理化学
物理
有机化学
量子力学
生物化学
作者
Lucas Mogg,Guang‐Ping Hao,Sheng Zhang,Cihan Bacaksız,Yichao Zou,Sarah J. Haigh,F. M. Peeters,A. K. Geǐm,M. Lozada-Hidalgo
标识
DOI:10.1038/s41565-019-0536-5
摘要
Monolayers of graphene and hexagonal boron nitride (hBN) are highly permeable to thermal protons. For thicker two-dimensional (2D) materials, proton conductivity diminishes exponentially so that, for example, monolayer MoS2 that is just three atoms thick is completely impermeable to protons. This seemed to suggest that only one-atom-thick crystals could be used as proton conducting membranes. Here we show that few-layer micas that are rather thick on the atomic scale become excellent proton conductors if native cations are ion-exchanged for protons. Their areal conductivity exceeds that of graphene and hBN by one-two orders of magnitude. Importantly, ion-exchanged 2D micas exhibit this high conductivity inside the infamous gap for proton-conducting materials, which extends from 100 C to 500 C. Areal conductivity of proton-exchanged monolayer micas can reach above 100 S cm-2 at 500 C, well above the current requirements for the industry roadmap. We attribute the fast proton permeation to 5 A-wide tubular channels that perforate micas' crystal structure which, after ion exchange, contain only hydroxyl groups inside. Our work indicates that there could be other 2D crystals with similar nm-scale channels, which could help close the materials gap in proton-conducting applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI