Area of research
Polymers and Plastics · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Organic solar cell, Energy conversion efficiency, Ternary operation, Chemistry, and Acceptor.
Electret‐Inspired Charge‐Injected Hydrogel for Scar‐Free Healing of Bacterially Infected Burns Through Bioelectrical Stimulation and Immune Modulation
Electrochemical CO <sub>2</sub> Capture by a Quinone-Based Covalent Organic Framework
Sonication-induced J-aggregation in nonhalogenated solvents boosts exciton delocalization for high-efficiency organic solar cells
Coixol inhibits the IL17A signaling pathway and promotes mitophagy to improve ulcerative colitis
High‐Performance Organic Narrow Dual‐Band Circular Polarized Light Detection for Encrypted Communications and Color Imaging
A High‐Mobility n‐Type Noncovalently‐Fused‐Ring Polymer for High‐Performance Organic Thermoelectrics
Bis(benzoselenadiazol)ethane: A π‐Extended Acceptor‐Dimeric Unit for Ambipolar Polymer Transistors with Hole and Electron Mobilities Exceeding 10 cm<sup>2</sup> V<sup>−1</sup> s<sup>−1</sup>
Enhancing Photon Utilization Efficiency for High‐Performance Organic Photovoltaic Cells via Regulating Phase‐Transition Kinetics
Suppressing the energetic disorder of all-polymer solar cells enables over 18% efficiency
High-Efficiency and Low-Energy-Loss Organic Solar Cells Enabled by Tuning Conformations of Dimeric Electron Acceptors
Strengthening the Hetero‐Molecular Interactions in Giant Dimeric Acceptors Enables Efficient Organic Solar Cells
Small Energetic Disorder Enables Ultralow Energy Losses in Non‐Fullerene Organic Solar Cells
A Wide Bandgap Acceptor with Large Dielectric Constant and High Electrostatic Potential Values for Efficient Organic Photovoltaic Cells
Flexible Organic Photovoltaic‐Powered Hydrogel Bioelectronic Dressing With Biomimetic Electrical Stimulation for Healing Infected Diabetic Wounds
Dual Förster resonance energy transfer effects enables high photocurrent density and high fill factor in ternary organic solar cells
Molecular Orientation‐Dependent Exciton Separation in Optimized Single‐Component Y6 Organic Solar Cells
Improving the efficiency of ternary organic solar cells by reducing energy loss
Binary Organic Solar Cells Breaking 19% via Manipulating the Vertical Component Distribution
Small reorganization energy acceptors enable low energy losses in non-fullerene organic solar cells
Achieving Record-Efficiency Organic Solar Cells upon Tuning the Conformation of Solid Additives
Over 19.2% Efficiency of Organic Solar Cells Enabled by Precisely Tuning the Charge Transfer State Via Donor Alloy Strategy
Simultaneously Decreasing the Bandgap and V<sub>oc</sub> Loss in Efficient Ternary Organic Solar Cells
The Role of Entropy Gains in the Exciton Separation in Organic Solar Cells
Single‐Junction Organic Photovoltaic Cell with 19% Efficiency
17% efficiency all-small-molecule organic solar cells enabled by nanoscale phase separation with a hierarchical branched structure
Enhancing the Photovoltaic Performance of Triplet Acceptors Enabled by Side‐Chain Engineering
Advanced functional polymer materials
Flexible VO<i><sub>x</sub></i> Nanosphere@SWCNT Hybrid Films with Dual‐Confinement Function of Polysulfides for High‐Performance Lithium–Sulfur Batteries
Single‐Junction Binary‐Blend Nonfullerene Polymer Solar Cells with 12.1% Efficiency
Ultrathin metal–organic framework nanosheets for electrocatalytic oxygen evolution