Jump to HeaderJump to Main ContentJump to Footer
Michigan State University
MSUTODAY
  • Browse Stories By

    Topics

    Explore stories by subject area

    • Arts and Culture
    • Business and Economy
    • Climate and Environment
    • Education and Learning
    • Engineering, Science and Technology
    • Government and Society
    • Health and Medicine
    • Media and Communications
    • MSU Leadership and Impact
    • Sports and Recreation
    • Student and Campus Experience
    View All Stories

    Collections

    Curated story series

    • Turfgrass
    • Ask the Expert
    • Big Ideas
    • Climate solutions
    • Water at MSU
    • Mobility
    • Spartan Perspectives
    • Student views
    • Graduate voices
    • Faculty voices
    View All Collections

    Featured

    Editor's picks

    • 9 reasons to love being a Spartan

      Aug. 28, 2026

      9 reasons to love being a Spartan

    • NIH awards multi-university team over $4M to improve women’s health

      Sept. 15, 2026

      NIH awards multi-university team over $4M to improve women’s health

MSUTODAY
  • Browse Stories By

< Browse Stories By

Topics

Explore stories by subject area

  • Arts and Culture
  • Business and Economy
  • Climate and Environment
  • Education and Learning
  • Engineering, Science and Technology
  • Government and Society
  • Health and Medicine
  • Media and Communications
  • MSU Leadership and Impact
  • Sports and Recreation
  • Student and Campus Experience
  • View All Stories

Collections

Curated story series

  • Turfgrass
  • Ask the Expert
  • Big Ideas
  • Climate solutions
  • Water at MSU
  • Mobility
  • Spartan Perspectives
  • Student views
  • Graduate voices
  • Faculty voices
  • View All Collections

Featured

Editor's picks

  • 9 reasons to love being a Spartan

    Aug. 28, 2026

    9 reasons to love being a Spartan

  • NIH awards multi-university team over $4M to improve women’s health

    Sept. 15, 2026

    NIH awards multi-university team over $4M to improve women’s health

  • For Media
  • Experts
  • Releases and Statements
  • Sign Up
  • Update Information

Resources

  • A to Z Index
  • Find People
  • Maps
  • Email
  • Student Information System (SIS)
  • D2L
  • Libraries
  • Tech Support
  • MSU Misconduct Hotline
  • Social Media Directory
  • Events Calendar
  • For Media
Michigan State University
MSUToday
  • For Media
  • Experts
  • Releases and Statements
  • Sign Up
  • Update Information
Natural Sciences

Sept. 16, 2025

‘Wiggling’ atoms may lead to smaller, more efficient electronics 

Summary

 

  • Wiggling atoms in new quantum materials could lead to more efficient electronics that are smaller and faster.
  • These new materials have surprising properties and could be key elements for next-generation quantum computers.  

Researchers at Michigan State University have figured out how to use a fast laser to wiggle atoms in a way that temporarily changes the behavior of their host material. Their novel approach could lead to smaller, faster and more efficient electronics — like smartphones — in the future.

Tyler Cocker, an associate professor in the College of Natural Science, and Jose L. Mendoza-Cortes, an assistant professor in the colleges of Engineering and Natural Science, have combined the experimental and theoretical sides of quantum mechanics — the study of the strange ways atoms behave at a very small scale — to push the boundaries of what materials can do to improve electronic technologies we use every day.

Tyler Cocker
Tyler Cocker

“This experience has been a reminder of what science is really like because we found materials that are working in ways that we didn’t expect,” said Cocker. “Now, we want to look at something that is going to be technologically interesting for people in the future.”

Using a material called tungsten ditelluride, or WTe2, which is made up of a layer of tungsten, or W atoms, sandwiched between two layers of tellurium, or Te atoms, Cocker’s team conducted a series of experiments where they placed this material under a specialized microscope they built. While microscopes are typically used to look at things that are hard for the human eye to see, like individual cells, Cocker’s scanning tunneling microscope can show individual atoms on the surface of a material. It does this by moving an extremely sharp metal tip over the surface, “feeling” atoms through an electrical signal, like reading braille. While looking at the atoms on the surface of WTe2, Cocker and his team used a super-fast laser to create terahertz pulses of light that were moving at speeds of hundreds of trillions of times per second. These terahertz pulses were focused onto the tip. At the tip, the strength of the pulses was increased enormously, allowing the researchers to wiggle the top layer of atoms directly beneath the tip and gently nudge that layer out of alignment from the remaining layers underneath it. Think of it like a stack of papers with the top sheet slightly crooked.

Vedran Jelic and Tyler Cocker
Vedran Jelic and Tyler Cocker

While the laser pulses illuminated the tip and WTe2, the top layer of the material behaved differently, exhibiting new electronic properties not observed when the laser was turned off. Cocker and his team realized the terahertz pulses together with the tip could be used like a nanoscale switch to temporarily change the electrical properties of WTe2 to upscale the next generation of devices. Cocker’s microscope could even see the atoms moving during this process and photograph the unique “on” and “off” states of the switch they had created.

When Cocker and Mendoza-Cortes realized that they were working on similar projects from different perspectives, Cocker’s experimental side joined with Mendoza’s theoretical side of quantum mechanics. Mendoza-Cortes’ research focuses on creating computer simulations. By comparing the results of Mendoza’s quantum calculations to Cocker’s experiments, both labs yielded the same results — independently and by using different tools.

Jose Mendoza at Michigan State University
Jose L. Mendoza-Cortes

“Our research is complementary; it’s the same observations but through different lenses,” said Mendoza-Cortes. “When our model matched the same answers and conclusions they found in their experiments, we have a better picture of what is going on.”

The Mendoza lab computationally found that the layers of WTe2 shift by 7 picometers while they are wiggling, which is hard to observe by the specialized microscope alone. Also, they were able to confirm that the frequencies at which the atoms wiggle match between the experiment and theory, but the quantum calculations can tell which way they wiggle and by how much.

From left to right, Kelly Climber, Jose Mendoza, Daniel Maldonado Lopez, and Ismail Buliyaminu examine a super-fast InfiniBand cable in ICER's high-performance computing center.
L-R: Kelly Climber, Jose L. Mendoza-Cortes and Daniel Maldonado Lopez.

“The movement only occurs on the topmost layer, so it is very localized,” said Daniel Maldonado-Lopez, a fourth-year graduate student in Mendoza’s lab. “This can potentially be applied in building faster and smaller electronics.”

Cocker and Mendoza-Cortes hope this research will lead to the use of new materials, lower costs, faster speeds and greater energy efficiency for future phones and computer technology.

Stefanie Adams
Stefanie Adams

“When you think about your smartphone or your laptop, all of the components that are in there are made out of a material,” said Stefanie Adams, a fourth-year graduate student in Cocker’s lab. “At some point, someone decided that’s the material we’re going to use.”

The research appeared in Nature Photonics and was supported in part through computational resources and services provided by the Institute for Cyber-Enabled Research at Michigan State University and the Cowen Family Endowment.

###

Michigan State University has been advancing the common good with uncommon will for 170 years. One of the world’s leading public research universities, MSU pushes the boundaries of discovery to make a better, safer, healthier world for all while providing life-changing opportunities to a diverse and inclusive academic community through more than 400 programs of study in 17 degree-granting colleges.

For generations, Spartans have been changing the world through research. Federal funding helps power many of the discoveries that improve lives and keep America at the forefront of innovation and competitiveness. From lifesaving cancer treatments to solutions that advance technology, agriculture, energy and more, MSU researchers work every day to shape a better future for the people of Michigan and beyond. Learn more about MSU’s research impact powered by partnership with the federal government.

MEDIA CONTACTS

Emilie Lorditch
Natural SciencesEngineering, Science and TechnologyEngineering

Latest News

MSUToday Weekly Update

The MSUToday Weekly Update email showcases how Spartans are making a difference through academic excellence, research impact and community outreach. Get inspired by these stories of innovation, collaboration and determination. Plus, enjoy photos and videos of campus and more MSU content to help keep you connected to the Spartan community.

Sign UpUpdate My Information

Connect With Us

Visit our Facebook pageVisit our page on XVisit our Instagram pageVisit our LinkedIn pageVisit our YouTube pageVisit our TikTok page

Health and Safety

  • MSU Police and Public Safety
  • Olin Health Center
  • Counseling & Psychiatric Services (CAPS)
  • University Health and Wellbeing
  • MSU Health Care
  • Civil Rights and Title IX
  • Our Commitment
  • Center for Survivors
  • Security & Fire Safety Report
  • University Policy on Relationship Violence and Sexual Misconduct
  • Notice of Non-Discrimination, Anti-Harassment and Non-Retaliation
  • Health Care Non-Discrimination Notice

Support Services

  • Disability Resources
  • Supportive Services
  • Learning Resources

Working at MSU

  • Human Resources
  • EBS Login
  • Job Postings
  • Employee Assistance Program

Reports

  • CARES Act Funding
  • Student Achievement and Outcomes

Contact us

517-355-1855

Address

Michigan State University 426 Auditorium Road East Lansing, MI 48824

Follow Us

  • Visit our Facebook page
  • Visit our page on X
  • Visit our Instagram page
  • Visit our TikTok page
  • Visit our LinkedIn page
  • Visit our YouTube page

If you're having accessibility issues, please let us know.

Know More: Campus Safety Information and ResourcesTransparency Reporting: Budget & Salary/Compensation
  • Contact Information|
  • Site Map|
  • Privacy Statement|
  • Site Accessibility|
  • Call MSU: (517) 355-1855|
  • Visit: msu.edu|
  • Notice of Nondiscrimination|

SPARTANS WILL|© Michigan State University|