材料科学
催化作用
电导率
介孔材料
电化学能量转换
电极
电化学
质子输运
质子
化学工程
阳极
分解水
纳米技术
无机化学
化学
物理化学
光催化
工程类
物理
量子力学
生物化学
作者
Gaoqiang Yang,Shule Yu,Zhenye Kang,Yifan Li,Guido Bender,Bryan S. Pivovar,Johney B. Green,David A. Cullen,Feng‐Yuan Zhang
标识
DOI:10.1002/aenm.201903871
摘要
Abstract Low electron/proton conductivities of electrochemical catalysts, especially earth‐abundant nonprecious metal catalysts, severely limit their ability to satisfy the triple‐phase boundary (TPB) theory, resulting in extremely low catalyst utilization and insufficient efficiency in energy devices. Here, an innovative electrode design strategy is proposed to build electron/proton transport nanohighways to ensure that the whole electrode meets the TPB, therefore significantly promoting enhance oxygen evolution reactions and catalyst utilizations. It is discovered that easily accessible/tunable mesoporous Au nanolayers (AuNLs) not only increase the electrode conductivity by more than 4000 times but also enable the proton transport through straight mesopores within the Debye length. The catalyst layer design with AuNLs and ultralow catalyst loading (≈0.1 mg cm −2 ) augments reaction sites from 1D to 2D, resulting in an 18‐fold improvement in mass activities. Furthermore, using microscale visualization and unique coplanar‐electrode electrolyzers, the relationship between the conductivity and the reaction site is revealed, allowing for the discovery of the conductivity‐determining and Debye‐length‐determining regions for water splitting. These findings and strategies provide a novel electrode design (catalyst layer + functional sublayer + ion exchange membrane) with a sufficient electron/proton transport path for high‐efficiency electrochemical energy conversion devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI