Home > Press > World's fastest man-made spinning object could help study quantum mechanics
![]()  | 
| A nanodumbbell levitated by an optical tweezer in vacuum can vibrate or spin, depending on the polarization of the incoming laser. (Purdue University photo/Tongcang Li) | 
Abstract:
Optically Levitated Nanodumbbell Torsion Balance and GHz Nanomechanical Rotor
Jonghoon Ahn, Zhujing Xu, Jaehoon Bang, Yu-Aao Deng, Thai M. Hoang, Qinkai Han, Ren-Min Ma, Tongcang Li
Levitated optomechanics has great potential in precision measurements, thermodynamics, macroscopic quantum mechanics, and quantum sensing. Here we synthesize and optically levitate silica nanodumbbells in high vacuum. With a linearly polarized laser, we observe the torsional vibration of an optically levitated nanodumbbell. This levitated nanodumbbell torsion balance is a novel analog of the Cavendish torsion balance, and provides rare opportunities to observe the Casimir torque and probe the quantum nature of gravity as proposed recently. With a circularly polarized laser, we drive a 170-nm-diameter nanodumbbell to rotate beyond 1 GHz, which is the fastest nanomechanical rotor realized to date. Smaller silica nanodumbbells can sustain higher rotation frequencies. Such ultrafast rotation may be used to study material properties and probe vacuum friction.
The video was prepared by Erin Easterling, digital producer for the Purdue College of Engineering, 765-496-3388, easterling@purdue.edu.
Researchers have created the fastest man-made rotor in the world, which they believe will help them study quantum mechanics.
At more than 60 billion revolutions per minute, this machine is more than 100,000 times faster than a high-speed dental drill.
"This study has many applications, including material science," said Tongcang Li, an assistant professor of physics and astronomy, and electrical and computer engineering, at Purdue University. "We can study the extreme conditions different materials can survive in."
Li's team synthesized a tiny dumbbell from silica and levitated it in high vacuum using a laser. The laser can work in a straight line or in a circle - when it's linear, the dumbbell vibrates, and when it's circular, the dumbbell spins.
A spinning dumbbell functions as a rotor, and a vibrating dumbbell functions like an instrument for measuring tiny forces and torques, known as a torsion balance. These devices were used to discover things like the gravitational constant and density of Earth, but Li hopes that as they become more advanced, they'll be able to study things like quantum mechanics and the properties of vacuum. Watch a video to see how it happens here.
"People say that there is nothing in vacuum, but in physics, we know it's not really empty," Li said. "There are a lot of virtual particles which may stay for a short time and then disappear. We want to figure out what's really going on there, and that's why we want to make the most sensitive torsion balance."
By observing this tiny dumbbell spin faster than anything before it, Li's team may also be able to learn things about vacuum friction and gravity. Understanding these mechanisms is an essential goal for the modern generation of physics, Li said.
###
Researchers from Purdue, Peking University, Tsinghua University, and the Collaborative Innovation Center of Quantum Matter in Beijing also contributed to this work. The first author of this work is Jonghoon Ahn, a graduate student in Li's research group. Li's research was funded by the National Science Foundation and Office of Naval Research.
####
For more information, please click here
Contacts:
Writer: Kayla Zacharias
765-494-9318
 
Source: Tongcang Li
765-496-0072
Copyright © Purdue University
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
| Related Links | 
| Related News Press | 
News and information
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Quantum Physics
    ICFO researchers overcome long-standing bottleneck in single photon detection with twisted 2D materials August 8th, 2025
    Quantum computers simulate fundamental physics: shedding light on the building blocks of nature June 6th, 2025
    A 1960s idea inspires NBI researchers to study hitherto inaccessible quantum states June 6th, 2025
Physics
    Quantum computers simulate fundamental physics: shedding light on the building blocks of nature June 6th, 2025
Govt.-Legislation/Regulation/Funding/Policy
    New imaging approach transforms study of bacterial biofilms August 8th, 2025
    Electrifying results shed light on graphene foam as a potential material for lab grown cartilage June 6th, 2025
    Institute for Nanoscience hosts annual proposal planning meeting May 16th, 2025
Possible Futures
    Spinel-type sulfide semiconductors to operate the next-generation LEDs and solar cells For solar-cell absorbers and green-LED source October 3rd, 2025
Discoveries
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Announcements
    Rice membrane extracts lithium from brines with greater speed, less waste October 3rd, 2025
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
    Spinel-type sulfide semiconductors to operate the next-generation LEDs and solar cells For solar-cell absorbers and green-LED source October 3rd, 2025
    Rice membrane extracts lithium from brines with greater speed, less waste October 3rd, 2025
Grants/Sponsored Research/Awards/Scholarships/Gifts/Contests/Honors/Records
    Researchers tackle the memory bottleneck stalling quantum computing October 3rd, 2025
    New discovery aims to improve the design of microelectronic devices September 13th, 2024
    Physicists unlock the secret of elusive quantum negative entanglement entropy using simple classical hardware August 16th, 2024
Research partnerships
    Lab to industry: InSe wafer-scale breakthrough for future electronics August 8th, 2025
    HKU physicists uncover hidden order in the quantum world through deconfined quantum critical points April 25th, 2025
Quantum nanoscience
    ICFO researchers overcome long-standing bottleneck in single photon detection with twisted 2D materials August 8th, 2025
    Programmable electron-induced color router array May 14th, 2025
| 
			 | 
	||
| 
			 | 
	||
| The latest news from around the world, FREE | ||
| 
			 | 
	||
| 
			 | 
	||
| Premium Products | ||
| 
			 | 
	||
| 
			Only the news you want to read! 
			 Learn More  | 
		||
| 
			 | 
	||
| 
			Full-service, expert consulting 
			 Learn More  | 
		||
| 
			 | 
	||