Electrolyte-mediated dense integration of graphene-MXene films for high volumetric capacitance flexi

来源 :纳米研究(英文版) | 被引量 : 0次 | 上传用户:jiusea
下载到本地 , 更方便阅读
声明 : 本文档内容版权归属内容提供方 , 如果您对本文有版权争议 , 可与客服联系进行内容授权或下架
论文部分内容阅读
High conductivity two-dimensional (2D) materials have been proved to be potential electrode materials for flexible supercapacitors because of its outstanding chemical and physical properties.However,electrodes based on 2D materials always suffer from limited electrolyte-accessible surface due to the restacking of the 2D sheets,hindering the full utilization of their surface area.In this regard,an electrolyte-mediated method is used to integrate dense structure reduced graphene oxide/MXene (RGM)-electrolyte composite films.In such composite films,reduced graphene oxide (RGO) and MXene sheets are controllable assembly in compact layered structure with electrolyte filled between the layers.The electrolyte layer between RGO and MXene sheets forms continuous ion transport channels in the composite films.Therefore,the RGM-electrolyte composite films can be used directly as self-supporting electrodes for supercapacitors without additional conductive agents and binders.As a result,the composite films demonstrate enhanced volumetric specific capacity,improved volumetric energy density and higher power density compared with both pure RGO electrode and porous composite electrode prepared by traditional methods.Specifically,when the mass ratio of MXene is 30%,the electrode delivers a volumetric specific capacity of 454.9 F·cm-3 with a high energy density of 39.4 Wh·L-1.More importantly,supercapacitors based on the composite films exhibit good flexibility electrochemical performance.The investigation provides a new approach to synthesize dense structure films based on 2D materials for application in high volumetric capacitance flexible supercapacitors.
其他文献
C5 olefin separation is of great importance and challenge in industry with the increasing demand for synthetic rubber.However,the related study is limited due t
Capacitive deionization (CDI) technology has been considered a promising desalination technique,especially for brackish water,because of its relatively low ener
Metal-semiconductor ohmic contacts are required to reduce the energy dissipation for two-dimensional (2D) electronic devices,and phase engineering of 2D transit
Nitrogen doped carbon is a burgeoning anode candidate for potassium-ion battery (PIBs) owing to its outstanding attributes.It is imperative to grasp further ins
Despite great progress of lithium-sulfur (Li-S) battery performance at the laboratory-level,both key parameters and challenges at cell scales to achieve practic
Atherosclerotic cardiovascular disease is the leading cause of mortality in the world.A driving feature of atherosclerotic plaque formation is dysfunctional eff
Combining the H2 production with brine remediation is regarded as a sustainable approach to achieving clean H2 energy.However,designing stable CI-oxidation reac
Two-dimensional (2D) materials have recently provided a new perspective on optoelectronics because of their unique layered structure and excellent physical prop
Cancer therapeutic nanovaccines are ideal tools to inhibit tumor growth and provide the body with continuous protecting immune surveillance.However,the conventi
With the unique properties,layered transition metal dichalcogenide (TMD) and its heterostructures exhibit great potential for applications in electronics.The el