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Main Authors: Tong, Tian, Lin, Feng, Zhang, Wei, Li, Runjia, Xing, Xinxin, Duan, Zhuochen, Xu, Chunhui, Tu, Bing, Liu, Zhaoping, Zhou, Xufeng, Wang, Zhiming, Liu, Dong, Hu, Jonathan, Bao, Jiming
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.22803
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author Tong, Tian
Lin, Feng
Zhang, Wei
Li, Runjia
Xing, Xinxin
Duan, Zhuochen
Xu, Chunhui
Tu, Bing
Liu, Zhaoping
Zhou, Xufeng
Wang, Zhiming
Liu, Dong
Hu, Jonathan
Bao, Jiming
author_facet Tong, Tian
Lin, Feng
Zhang, Wei
Li, Runjia
Xing, Xinxin
Duan, Zhuochen
Xu, Chunhui
Tu, Bing
Liu, Zhaoping
Zhou, Xufeng
Wang, Zhiming
Liu, Dong
Hu, Jonathan
Bao, Jiming
contents Ferromagnetic materials are widely used in Tesla thermomagnetic engines, whereas diamagnetic counterparts have remained unexplored. Here, we demonstrate the first diamagnetic Tesla engine by exploiting the strong diamagnetism of graphene. A graphene disk, fabricated by stacking graphene sheets, serves as the engine wheel. We first show that the conventional Tesla engine design using a permanent magnet placed near the disk edge to create unbalanced thermomagnetic forces under asymmetric local heating fails to generate rotation. We achieve stable operation by laterally displacing the levitated disk from equilibrium, creating a strong restoring force that drives rotation under light excitation. Calculations and measurements establish the displacement-dependent force, with an optimal offset of 0.8 mm yielding speeds up to 2000 rpm under laser heating and 1000 rpm under direct sunlight. Adding vanes allows the disk to function as a gear, powering a graphene vehicle and transferring energy to another disk. This design utilizes the strong and anisotropic diamagnetism of graphene and paves the way for light-powered sensors, actuators, and micro-vehicles.
format Preprint
id arxiv_https___arxiv_org_abs_2604_22803
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A Diamagnetic, Light-Driven Tesla Engine Based on a Mechanically Displaced, Magnetically Levitated Graphene Disk
Tong, Tian
Lin, Feng
Zhang, Wei
Li, Runjia
Xing, Xinxin
Duan, Zhuochen
Xu, Chunhui
Tu, Bing
Liu, Zhaoping
Zhou, Xufeng
Wang, Zhiming
Liu, Dong
Hu, Jonathan
Bao, Jiming
Applied Physics
Materials Science
Optics
Ferromagnetic materials are widely used in Tesla thermomagnetic engines, whereas diamagnetic counterparts have remained unexplored. Here, we demonstrate the first diamagnetic Tesla engine by exploiting the strong diamagnetism of graphene. A graphene disk, fabricated by stacking graphene sheets, serves as the engine wheel. We first show that the conventional Tesla engine design using a permanent magnet placed near the disk edge to create unbalanced thermomagnetic forces under asymmetric local heating fails to generate rotation. We achieve stable operation by laterally displacing the levitated disk from equilibrium, creating a strong restoring force that drives rotation under light excitation. Calculations and measurements establish the displacement-dependent force, with an optimal offset of 0.8 mm yielding speeds up to 2000 rpm under laser heating and 1000 rpm under direct sunlight. Adding vanes allows the disk to function as a gear, powering a graphene vehicle and transferring energy to another disk. This design utilizes the strong and anisotropic diamagnetism of graphene and paves the way for light-powered sensors, actuators, and micro-vehicles.
title A Diamagnetic, Light-Driven Tesla Engine Based on a Mechanically Displaced, Magnetically Levitated Graphene Disk
topic Applied Physics
Materials Science
Optics
url https://arxiv.org/abs/2604.22803