Wong Chi Ho, Tang Chak-Yin, Tsui Chi Pong, Law Wing Cheung, Frank Lam Leung Yuk, Hu Xijun, Shi Lei
Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hong Kong, China.
Division of Science, Engineering and Health Studies, School of Professional Education and Executive Development, The Hong Kong Polytechnic University, Hong Kong, China.
iScience. 2025 Mar 18;28(4):112240. doi: 10.1016/j.isci.2025.112240. eCollection 2025 Apr 18.
The realization of next-generation quantum computing devices is hindered by the formidable challenge of detecting and manipulating Majorana zero mode (MZM). In this study, we study if MZM exist in metallated carbyne nanowires. Through optimizations of distinct types of metallated carbyne, we have achieved an average magnetic moment surpassing 1μ for the cases of Mo, Tc, and Ru metallated carbyne. where their local moments exceed 2μ. The magnetism of the Ru atom displays periodic variations with increasing carbyne length. associated with a strong average spin-orbital coupling of ∼140meV. When the ferromagnetic Ru metallated carbyne, coupled with a superconducting Ru substrate, could trigger band inversions at the gamma (G) point and M point, where spin-orbital coupling triggers the transition between the band inversion and the Dirac gap. Our findings present an exciting opportunity to realize carbon-based materials capable of hosting MZM.
下一代量子计算设备的实现受到检测和操纵马约拉纳零模(MZM)这一艰巨挑战的阻碍。在本研究中,我们研究了MZM是否存在于金属化卡宾纳米线中。通过对不同类型的金属化卡宾进行优化,对于钼(Mo)、锝(Tc)和钌(Ru)金属化卡宾的情况,我们实现了平均磁矩超过1μ,其中它们的局域磁矩超过2μ。钌原子的磁性随卡宾长度增加呈现周期性变化,这与约140meV的强平均自旋 - 轨道耦合相关。当铁磁的钌金属化卡宾与超导钌衬底耦合时,会在伽马(G)点和M点引发能带反转,其中自旋 - 轨道耦合触发能带反转和狄拉克能隙之间的转变。我们的研究结果为实现能够容纳MZM的碳基材料提供了一个令人兴奋的机会。