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聚合物中自旋缺陷的激光写入

Laser writing of spin defects in polymers.

作者信息

Qin Yue, Guo Hao, Wu Daixuan, Ma Yuxing, Li Xin, Wen Huanfei, Li Zhonghao, Ma Zongmin, Tian He, Tang Jun, Liu Jun

机构信息

State Key Laboratory of Extreme Environment Optoelectronic Dynamic Testing Technology and Instrument, North University of China, Taiyuan 030051, China.

School of Integrated Circuits and Beijing National Research Center for Information Science and Technology (BNRist), Tsinghua University, Beijing 100084, China.

出版信息

Sci Adv. 2025 Aug;11(31):eadv1848. doi: 10.1126/sciadv.adv1848. Epub 2025 Aug 1.

Abstract

Technologies based on quantum effects of spin defects, such as computation, communication, sensing, and anticounterfeiting, have developed rapidly. However, limited by specific crystal structure required for spin defects, wide extension of their application faces challenges. A notable challenge is fabricating spin defects in general-purpose, low-cost amorphous materials such as polymers. Here, we propose an in situ laser-induced fabrication strategy of spin defects from polymers based on manipulation of main and side chains of polymers (MMSCP). By using 17 laser parameters and 8 polymers, we successfully fabricated silicon carbide spin defects derived from material mismatches. ODMR contrast and linewidth are consistently above 0.15% and below 54 megahertz, respectively. Benefiting from minimal damage of laser direct writing and stable covalent bonding, MMSCP effectively fabricates spin defects in manufactured microfluidic devices, cardiac patches, and medicine bottles and applies them to sensing and anticounterfeiting. Overall, MMSCP represents a paradigm that revolutionizes the application scheme of spin defects.

摘要

基于自旋缺陷量子效应的技术,如计算、通信、传感和防伪等,发展迅速。然而,受自旋缺陷所需特定晶体结构的限制,其应用的广泛扩展面临挑战。一个显著的挑战是在聚合物等通用、低成本非晶材料中制造自旋缺陷。在此,我们基于对聚合物主链和侧链的操控(MMSCP),提出一种从聚合物原位激光诱导制造自旋缺陷的策略。通过使用17个激光参数和8种聚合物,我们成功制造出源于材料失配的碳化硅自旋缺陷。ODMR对比度和线宽分别始终高于0.15%和低于54兆赫兹。受益于激光直写的最小损伤和稳定的共价键,MMSCP有效地在制造的微流控装置、心脏贴片和药瓶中制造自旋缺陷,并将其应用于传感和防伪。总体而言,MMSCP代表了一种彻底改变自旋缺陷应用方案的范例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0331/12315991/db353a6b452a/sciadv.adv1848-f1.jpg

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