Baydin Andrey, Tay Fuyang, Fan Jichao, Manjappa Manukumara, Gao Weilu, Kono Junichiro
Department of Electrical and Computer Engineering, Rice University, Houston, TX 77005, USA.
Smalley-Curl Institute, Rice University, Houston, TX 77005, USA.
Materials (Basel). 2022 Feb 18;15(4):1535. doi: 10.3390/ma15041535.
Carbon nanotubes, quintessentially one-dimensional quantum objects, possess a variety of electrical, optical, and mechanical properties that are suited for developing devices that operate on quantum mechanical principles. The states of one-dimensional electrons, excitons, and phonons in carbon nanotubes with exceptionally large quantization energies are promising for high-operating-temperature quantum devices. Here, we discuss recent progress in the development of carbon-nanotube-based devices for quantum technology, i.e., quantum mechanical strategies for revolutionizing computation, sensing, and communication. We cover fundamental properties of carbon nanotubes, their growth and purification methods, and methodologies for assembling them into architectures of ordered nanotubes that manifest macroscopic quantum properties. Most importantly, recent developments and proposals for quantum information processing devices based on individual and assembled nanotubes are reviewed.
碳纳米管是典型的一维量子物体,具有多种电学、光学和机械性能,适合于开发基于量子力学原理运行的器件。碳纳米管中一维电子、激子和声子的状态具有极大的量子化能量,这对于高工作温度的量子器件很有前景。在这里,我们讨论了基于碳纳米管的量子技术器件开发的最新进展,即用于彻底改变计算、传感和通信的量子力学策略。我们涵盖了碳纳米管的基本性质、它们的生长和纯化方法,以及将它们组装成表现出宏观量子性质的有序纳米管结构的方法。最重要的是,我们回顾了基于单个和组装纳米管的量子信息处理器件的最新进展和提议。