Precision grain boundary engineering in commercial Bi <sub>2</sub> Te <sub>2.7</sub> Se <sub>0.3</sub> thermoelectric materials towards high performanceShuankui Li, Feng Pan, Zhongyuan Huang et al.|Journal of Materials Chemistry A|2021Cited by 47
Highly Distorted Grain Boundary with an Enhanced Carrier/Phonon Segregation Effect Facilitates High-Performance Thermoelectric MaterialsShuankui Li, Feng Pan, Jun Luo et al.|ACS Applied Materials & Interfaces|2021Cited by 25
Designing cost-performance porous thermoelectric materials by interface engineering through atomic layer depositionShuankui Li, Feng Pan, Wenguang Zhao et al.|Journal of Material Science and Technology|2024Cited by 24
Thermoelectric Performance Enhancement in Commercial Bi<sub>0.5</sub>Sb<sub>1.5</sub>Te<sub>3</sub> Materials by Introducing Gradient Cu-Doped Grain BoundariesShuankui Li, Feng Pan, Wenguang Zhao et al.|ACS Applied Materials & Interfaces|2022Cited by 20
Achieving High Thermoelectric Performance by Introducing 3D Atomically Thin Conductive Framework in Porous Bi<sub>2</sub>Te<sub>2.7</sub>Se<sub>0.3</sub>‐Carbon Nanotube HybridsShuankui Li, Feng Pan, Rui Wang et al.|Advanced Electronic Materials|2020Cited by 17