武汉工程大学 Wuhan Institute of TechnologyTQ拓扑量子材料与计算物理课题组Topological Quantum Materials & Computational Physics Group

科研成果

发表论文

PUBLICATIONS

2026

4 篇
  1. Oxygen-Rich Molecular Bridging Interface Enable High-Performance Perovskite Solar Cells. Advanced Functional Materials 36, e75843
  2. Type-II Dirac Fermions in Monolayer In2O: Interplay of Magnetotransport, Spin Hall Effect, and Superconductivity. Advanced Science, 2026, e24346
  3. Low-dimensional hydrophobic ligand in antioxidant vitamin acetate enables high-performance perovskite solar cells. Chemical Engineering Journal 536, 176080
  4. Plasmon-induced charge separation and accumulation in Ag2S/Cu2−xS S-scheme junction for broad-spectrum photothermal-assisted photocatalysis. Journal of Materials Chemistry A 14, 8785–8796

2025

9 篇
  1. Unveiling the impact of intrinsic defects on thermal conductivity in CuInTe2 using neural network potential. Physical Chemistry Chemical Physics 27, 25365–25373
  2. Voltage-driven flexible skyrmioniums for high-speed transport and reversible logic in discrete electrode nanowires. Nanoscale 17, 20410–20419
  3. Ultralong Cycle Stability and High Rate Performance of Aqueous Ammonium-Ion Hybrid Supercapacitors Enabled by In Situ Polymerization of PANI on Ti3C2Tx MXene. ACS Applied Energy Materials, 2025
  4. Multi-Hydroxyl and Chloric Buried Interface Bridges Enable Synergistically High-Efficiency Perovskite Solar Cells. Small 21, 2500174
  5. Strong interaction between plasmon and topological surface state in Bi2Se3/Cu2−xS nanowires for solar-driven photothermal applications. Science Advances 11, eadt2884
  6. Searching for topological carbon allotropes and the possible nontrivial quasi-particle states in them. Materials Today Physics 53, 101700
  7. Topological magnetic corner states in two-dimensional ferrimagnetic metal-organic frameworks. Physical Review B 111, 075433
  8. Designing Chiral Organometallic Nanosheets with Room-Temperature Multiferroicity and Topological Nodes. Nano Letters 25, 1480–1486
  9. Copper-Poor Copper Sulfide Enables High-Efficiency and Stable Perovskite Solar Cells via Interface Modification. Advanced Functional Materials 35, 2415709

2024

4 篇
  1. Broad Light Absorption and Multichannel Charge Transfer Mediated by Topological Surface State in CdS/ZnS/Bi2Se3 Nanotubes for Improved Photocatalytic Hydrogen Production. Advanced Functional Materials 34, 2407819
  2. Dynamic behavior and stability control of skyrmionium in periodic PMA/damping gradient nanowires. Journal of Applied Physics 136
  3. The type-I, III nodal ring, type-I, III quadratic nodal point, and Dirac valley phonons in 2D kagome lattices M2C3 (M = As, Bi, Cd, Hg, P, Sb, Zn). Journal of Physics: Condensed Matter 36, 325703
  4. Optimizing skyrmionium movement and stability via stray magnetic fields in trilayer nanowire constructs. Physical Chemistry Chemical Physics 26, 4716–4723

2023

6 篇
  1. Symmetry-enforced type-II Weyl phonons and hybrid Weyl nodal-line phonons in P4̄m2-carbon. Physical Review B 108, 235302
  2. Unconventional Charge-Two Weyl Phonons in High-Symmetry Lines. Advanced Physics Research 2, 2300004
  3. Multi-Fold Fan-Shape Surface State Induced by an Isolated Weyl Phonon Beyond No-Go Theorem. Advanced Science 10, 2207508
  4. Quintuple Function Integration in Two-Dimensional Cr(II) Five-Membered Heterocyclic Metal–Organic Frameworks. Journal of the American Chemical Society 145, 7869–7878
  5. Interface Modification via Rare Earth Material to Assist Hole Migration for Efficiency and Stability Promotion of Perovskite Solar Cells. Solar RRL, 2023
  6. Control and regulation of skyrmionic topological charge in a novel synthetic antiferromagnetic nanostructure. Nanoscale 15, 5257–5264

2023年以前文章

20 篇
  1. Topological nodal-link phonons, three-fold, Dirac and six-fold nodal-point phonons in the insulator SiO2. New Journal of Physics 24, 113040 (2022)
  2. Single-pair Weyl points with the maximum charge number in acoustic crystals. Physical Review B 106, L161302 (2022)
  3. Nonlocal manipulation of magnetism in an itinerant two-dimensional ferromagnet. ACS Nano 16, 12437–12444 (2022)
  4. Topological phonons in allotropes of carbon. Materials Today Physics 24, 100694 (2022)
  5. Enhanced thermoelectric performance by lone-pair electrons and bond anharmonicity in the two-dimensional Ge2Y2 family of materials with Y = N, P, As, or Sb. Physical Review B 105, 075431 (2022)
  6. Topological states in the noncentrosymmetric superconductors LaPtSi and LaPtGe. Physical Review B 104, 245129 (2021)
  7. Ideal topological nodal-surface phonons in RbTeAu-family materials. Physical Review B 104, L041405 (2021)
  8. Topological phononic nodal hexahedron net and nodal links in the high-pressure phase of the semiconductor CuCl. Physical Review B 104, 045409 (2021)
  9. Charge-four Weyl phonons. Physical Review B 103, L161303 (2021)
  10. Low energy dissipation readout of single-molecule ferroelectronic states by a spin-Seebeck signal. Physical Review Research 2, 043406 (2020)
  11. Symmetry-enforced Weyl phonons. npj Computational Materials 6, 95 (2020)
  12. Categories of Phononic Topological Weyl Open Nodal Lines and a Potential Material Candidate: Rb2Sn2O3. The Journal of Physical Chemistry Letters 10, 4045–4050 (2019)
  13. Spin-orbit coupling induced robust spin-Seebeck effect and pure thermal spin currents in achiral molecule systems. Physical Review B 100, 085407 (2019)
  14. Magnetic nanotubes: A new material platform to realize a robust spin-Seebeck effect and a perfect thermal spin-filtering effect. Physical Review B 98, 115422 (2018)
  15. Spin caloritronics in armchair silicene nanoribbons with sp3 and sp2-type alternating hybridizations. Journal of Physics: Condensed Matter 30, 355303 (2018)
  16. How to realize the spin-Seebeck effect with a high spin figure of merit in magnetic boron–nitrogen nanoribbon and nanotube structures? Journal of Materials Chemistry C 6, 10603–10610 (2018)
  17. How to realize a spin-dependent Seebeck diode effect in metallic zigzag γ-graphyne nanoribbons? Nanoscale 9, 18334–18342 (2017)
  18. Edge-defect induced spin-dependent Seebeck effect and spin figure of merit in graphene nanoribbons. Physical Chemistry Chemical Physics 19, 27132–27139 (2017)
  19. 溶胶-凝胶法制备 CaCu3Ti4O12 陶瓷及其介电性能研究. 人工晶体学报 45(3), 725–729 (2016)
  20. Electronic structures and magnetism of CaFeAsH and CaFeAsF. Journal of the Physical Society of Japan 84, 054708 (2015)

主持科研项目

RESEARCH PROJECTS
  • 2025—2027国家自然科学基金青年项目,项目编号:12404085
  • 2025—2027湖北省教育厅青年项目,项目编号:Q20251505
  • 2022—2024湖北省自然科学基金黄石联合创新项目,项目编号:2022CFD041
  • 2022国家自然科学基金理论物理专项博士后项目,项目编号:12147113
  • 2021—2022中国博士后科学基金二等资助,项目编号:2021M691149
  • 2021—2022湖北省博士后创新岗位基金
  • 2024—2026湖北汽车工业学院开放基金