Fenglei Shi

About Fenglei Shi

Fenglei Shi, With an exceptional h-index of 14 and a recent h-index of 14 (since 2020), a distinguished researcher at Shanghai Jiao Tong University, specializes in the field of electrocatalysis, in situ TEM, fuel cell.

His recent articles reflect a diverse array of research interests and contributions to the field:

Corrosion Dynamics of Carbon-Supported Platinum Electrocatalysts with Metal–Carbon Interactions Revealed by In Situ Liquid Transmission Electron Microscopy

Quasi/non-equilibrium state in nanobubble growth trajectory revealed by in-situ transmission electron microscopy

Tensile-Strained Platinum–Cobalt Alloy Surface on Palladium Octahedra as a Highly Durable Oxygen Reduction Catalyst

Correction to Effectively Tuning the Ratio of CO and H2 into Syngas through CO2 Electrochemical Reduction over a Wide Potential Range on a ZnO Nanosheet …

Effectively Tuning the Ratio of CO and H2 into Syngas through CO2 Electrochemical Reduction over a Wide Potential Range on a ZnO Nanosheet via Ni Doping

Mastering the surface strain of platinum catalysts for efficient electrocatalysis

Design of Highly Durable Core− Shell Catalysts by Controlling Shell Distribution Guided by In‐Situ Corrosion Study

In Situ Observations of the Dynamics of Pd@ Pt Core-Shell Nanoparticles in Electrolyte

Fenglei Shi Information

University

Position

School of Materials Science and Engineering

Citations(all)

758

Citations(since 2020)

745

Cited By

169

hIndex(all)

14

hIndex(since 2020)

14

i10Index(all)

16

i10Index(since 2020)

16

Email

University Profile Page

Google Scholar

Fenglei Shi Skills & Research Interests

electrocatalysis

in situ TEM

fuel cell

Top articles of Fenglei Shi

Corrosion Dynamics of Carbon-Supported Platinum Electrocatalysts with Metal–Carbon Interactions Revealed by In Situ Liquid Transmission Electron Microscopy

Nano Letters

2024/2/6

Quasi/non-equilibrium state in nanobubble growth trajectory revealed by in-situ transmission electron microscopy

Nano Today

2023/2/1

Tensile-Strained Platinum–Cobalt Alloy Surface on Palladium Octahedra as a Highly Durable Oxygen Reduction Catalyst

ACS Applied Materials & Interfaces

2023/1/16

Correction to Effectively Tuning the Ratio of CO and H2 into Syngas through CO2 Electrochemical Reduction over a Wide Potential Range on a ZnO Nanosheet …

ACS Applied Energy Materials

2022/7/6

Effectively Tuning the Ratio of CO and H2 into Syngas through CO2 Electrochemical Reduction over a Wide Potential Range on a ZnO Nanosheet via Ni Doping

ACS Applied Energy Materials

2022/4/27

Mastering the surface strain of platinum catalysts for efficient electrocatalysis

Nature

2021/10/7

Design of Highly Durable Core− Shell Catalysts by Controlling Shell Distribution Guided by In‐Situ Corrosion Study

Advanced Materials

2021/9

In Situ Observations of the Dynamics of Pd@ Pt Core-Shell Nanoparticles in Electrolyte

Microscopy and Microanalysis

2021/8

Understanding of strain‐induced electronic structure changes in metal‐based electrocatalysts: using Pd@ Pt core‐shell nanocrystals as an ideal platform

Small

2021/7

Deposition of atomically thin Pt shells on amorphous palladium phosphide cores for enhancing the electrocatalytic durability

ACS nano

2021/3/23

Shape transformation mechanism of gallium–indium alloyed liquid metal nanoparticles

Advanced Materials Interfaces

2021/3

Boosting oxygen and peroxide reduction reactions on PdCu intermetallic cubes

ChemElectroChem

2020/6/17

Manipulation of Electron Transfer between Pd and TiO2 for Improved Electrocatalytic Hydrogen Evolution Reaction Performance

ACS applied materials & interfaces

2020/5/19

Real-time visualization of solid-phase ion migration kinetics on nanowire monolayer

Journal of the American Chemical Society

2020/4/8

Lattice-mismatch-induced growth of ultrathin Pt shells with high-index facets for boosting oxygen reduction catalysis

Journal of materials chemistry A

2020

Strain-induced corrosion kinetics at nanoscale are revealed in liquid: enabling control of corrosion dynamics of electrocatalysis

Chem

2020/9/10

Amorphous Cr2WO6-Modified WO3 Nanowires with a Large Specific Surface Area and Rich Lewis Acid Sites: A Highly Efficient Catalyst for Oxidative …

ACS Applied Materials & Interfaces

2020/7/29

See List of Professors in Fenglei Shi University(Shanghai Jiao Tong University)

Co-Authors

academic-engine