| Literature DB >> 31100003 |
Minmin Hu1,2, Cong Cui1,2, Chao Shi1, Zhong-Shuai Wu3, Jinxing Yang1,2, Renfei Cheng1,2, Tianjia Guang1,2, Hailong Wang4, Hongxia Lu4, Xiaohui Wang1.
Abstract
MXenes have emerged as promising high-volumetric-capacitance supercapacitor electrode materials, whereas their voltage windows are not wide. This disadvantage prevents MXenes from being made into aqueous symmetric supercapacitors with high energy density. To attain high energy density, constructing asymmetric supercapacitors is a reliable design choice. Here, we propose a strategy to achieve high energy density of hydrogen ion aqueous-based hybrid supercapacitors by integrating a negative electrode of Ti3C2 T x MXene and a positive electrode of redox-active hydroquinone (HQ)/carbon nanotubes. The two electrodes are separated by a Nafion film that is proton permeable in H2SO4 electrolyte. Upon charging/discharging, hydrogen ions shuttle back and forth between the cathode and anode for charge compensation. The proton-induced high capacitance of MXene and HQ, along with complementary working voltage windows, simultaneously enhance the electrochemical performance of the device. Specifically, the hybrid supercapacitors operate in a 1.6 V voltage window and deliver a high energy density of 62 Wh kg-1, which substantially exceeds those of the state-of-the-art aqueous asymmetric supercapacitors reported so far. Additionally, the device exhibits excellent cycling stability and the all-solid-state planar hybrid supercapacitor displays exceptional flexibility and integration for bipolar cells to boost the capacitance and voltage output. These encouraging results provide the possibility of designing high-energy-density noble-metal-free asymmetric supercapacitors for practical applications.Entities:
Keywords: MXene; energy storage; hybrid supercapacitor; redox-active electrolyte; two-dimensional material
Year: 2019 PMID: 31100003 DOI: 10.1021/acsnano.9b01762
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881