Li, B., Hao, Y., Shao, J., Shao, T., Luo, R., Liu, X., . . . Liu, C. (2026). Magnetic-order engineering enables substantial work function modulation: A charge transfer gating strategy in composite structure of antiferromagnet, quantum dots and topological insulator. Applied Surface Science, 725, N.PAG. https://doi.org/10.1016/j.apsusc.2026.165836
Chicago Style (17th ed.) CitationLi, Bin, Yu-Jie Hao, Ji-Feng Shao, Tian-Hao Shao, Rong-Hao Luo, Xiang-Rui Liu, Ming-Yuan Zhu, Yue Zhao, and Chang Liu. "Magnetic-order Engineering Enables Substantial Work Function Modulation: A Charge Transfer Gating Strategy in Composite Structure of Antiferromagnet, Quantum Dots and Topological Insulator." Applied Surface Science 725 (2026): N.PAG. https://doi.org/10.1016/j.apsusc.2026.165836.
MLA (9th ed.) CitationLi, Bin, et al. "Magnetic-order Engineering Enables Substantial Work Function Modulation: A Charge Transfer Gating Strategy in Composite Structure of Antiferromagnet, Quantum Dots and Topological Insulator." Applied Surface Science, vol. 725, 2026, p. N.PAG, https://doi.org/10.1016/j.apsusc.2026.165836.