Kenan Tian, Siwen Chen, Lei Wang, Yuanji Sheng, Dingjiang Long, Rui Li, Han Xie, Yiming Chen, Xiang Bian, Hao Wang, Ruoyu Ding, Chang-Kui Duan, Peiran Yin, Xi Kong, Pu Huang
Exotic spin-spin-velocity-dependent interactions, predicted in extensions of the standard model involving new bosonic fields, could resolve fundamental puzzles from dark matter to cosmic asymmetry. However, exploring these weak potential interactions at centimeter scales presents formidable challenges, primarily due to the overwhelming dominance of electromagnetic backgrounds that can easily obscure the weak exotic signals. Here, we utilize a levitated magnet force sensor with ultrahigh electron spin density to probe these interactions. We constrain two interactions individually through a designed spin source and a multilayer magnetic shielding system that suppresses electromagnetic backgrounds. In this Letter, we constrain two types of interactions: the V_{6} potential at force ranges from 10^{-3} to 6×10^{-2} m and the V_{14} potential at ranges greater than 10^{-3} m. Our measurements establish 95% confidence-level bounds of |f_{6}|≤2.12×10^{-13} and |f_{14}|≤2.34×10^{-23} at λ=1.6×10^{-2} m, improving prior limits by up to 12 and 13 orders of magnitude, respectively. Our result demonstrates the levitated magnet as a highly sensitive probe for detecting new bosonic fields in extensions of the standard model.