Area of research
Electrical and Electronic Engineering · Polymers and Plastics
Research interest
Research interests include Materials science, Organic solar cell, Acceptor, Photovoltaic system, Energy conversion efficiency, and Polymer.
Low-cost Narrow-Bandgap Organic Semiconductor for Efficient Photovoltaic and Photodetection Applications
Cost-Effective Cathode Interlayer Material for Scalable Organic Photovoltaic Cells
Molecular Design of Fully Nonfused Acceptors for Efficient Organic Photovoltaic Cells
Simplified fabrication of high-performance organic solar cells through the design of self-assembling hole-transport molecules
Donor-acceptor bulk-heterojunction sensitizer for efficient solid-state infrared-to-visible photon up-conversion
Binary Organic Solar Cells with 19.2% Efficiency Enabled by Solid Additive
Tandem organic solar cells with 20.6% efficiency enabled by reduced voltage losses
Enhancing Photon Utilization Efficiency for High‐Performance Organic Photovoltaic Cells via Regulating Phase‐Transition Kinetics
Restrained energetic disorder for high-efficiency organic solar cells <i>via</i> a solid additive
Suppressing the energetic disorder of all-polymer solar cells enables over 18% efficiency
Thermodynamic Phase Transition of Three‐Dimensional Solid Additives Guiding Molecular Assembly for Efficient Organic Solar Cells
A Wide Bandgap Acceptor with Large Dielectric Constant and High Electrostatic Potential Values for Efficient Organic Photovoltaic Cells
A Nitroxide Radical Conjugated Polymer as an Additive to Reduce Nonradiative Energy Loss in Organic Solar Cells
High‐Performance Binary All‐Polymer Solar Cells with Efficiency Over 18.3% Enabled by Tuning Phase Transition Kinetics
Double-Cable Conjugated Polymers Based on Simple Non-Fused Electron Acceptors for Single-Component Organic Solar Cells
Recent progress in organic solar cells (Part II device engineering)
A New Polymer Donor Enables Binary All‐Polymer Organic Photovoltaic Cells with 18% Efficiency and Excellent Mechanical Robustness
High‐Efficiency and Mechanically Robust All‐Polymer Organic Photovoltaic Cells Enabled by Optimized Fibril Network Morphology
A Medium‐Bandgap Nonfullerene Acceptor Enabling Organic Photovoltaic Cells with 30% Efficiency under Indoor Artificial Light
Delicate crystallinity control enables high-efficiency P3HT organic photovoltaic cells
Simultaneous Optimization of Efficiency, Stretchability, and Stability in <scp>All‐Polymer</scp> Solar Cells via Aggregation Control<sup>†</sup>
Double‐Cable Conjugated Polymers with Pendent Near‐Infrared Electron Acceptors for Single‐Component Organic Solar Cells
Refining acceptor aggregation in nonfullerene organic solar cells to achieve high efficiency and superior thermal stability
A Mixed-Ligand Strategy to Modulate P3HT Regioregularity for High-Efficiency Solar Cells
Single‐Junction Organic Photovoltaic Cell with 19% Efficiency
Recent progress in organic solar cells (Part I material science)
Reduced non-radiative charge recombination enables organic photovoltaic cell approaching 19% efficiency
A unified description of non-radiative voltage losses in organic solar cells
Stable and low-photovoltage-loss perovskite solar cells by multifunctional passivation
Thermoplastic Elastomer Tunes Phase Structure and Promotes Stretchability of High‐Efficiency Organic Solar Cells