Home > Press > A one-stop shop for quantum sensing materials
Defects in diamond membranes could hold the key to new quantum sensing materials. (Image by Shutterstock/Jurik Peter.) |
Abstract:
Scientists create quantum technology platform.
The brilliant blue of the Hope Diamond is caused by small impurities in its crystal structure. Similar diamond impurities are also giving hope to scientists looking to create materials that can be used for quantum computing and quantum sensing.
A one-stop shop for quantum sensing materials
Lemont, IL | Posted on May 27th, 2022
In new research from the U.S. Department of Energys (DOE) Argonne National Laboratory, researchers have created extremely thin membranes of pure diamond. In a few locations in the crystal structure of the membrane, however, the team substituted carbon atoms with other atoms, notably nitrogen. These defects connect to neighboring atomic vacancies regions where an atom is missing creating unusual quantum systems known as color centers. Such color centers are sites for storing and processing quantum information.
“…we hope this [platform] will eventually give us the ability to become a one-stop shop for quantum sensing materials. Xinghan Guo, University of Chicago
This work was supported primarily by DOE’s Office of Basic Energy Sciences, Materials Sciences and Engineering division, with support from Q-NEXT, a DOE National Quantum Information Science Research Center led by Argonne.
Equipped with a way to cheaply and easily create diamond membranes that have robust color centers, scientists at Argonne hope to build a kind of assembly line for generating large numbers of these membranes for quantum experiments around the world.
The ability to grow the membranes could be the ticket to enhancing collaboration between different laboratories devoted to quantum information science, said University of Chicago graduate student Xinghan Guo, lead author of the study.
Essentially, we hope this will eventually give us the ability to become a one-stop shop for quantum sensing materials, Guo said.
The defects in the diamond are interesting to us because they can be exploited for quantum application, said Nazar Delegan, scientist in Argonne’s Materials Science division and the Pritzker School of Molecular Engineering at the University of Chicago and a collaborator with Q-NEXT. Making these membranes allows us to integrate these defects with other systems and enables new experimental configurations.
Diamond is mechanically hard, chemically stable and generally expensive in other words, it is kind of a scientific nightmare, notoriously difficult to fabricate and integrate. At the same time, diamond’s particular structure makes it a great host for color centers that can store quantum information for a long time, Guo said.
Conventional diamond as a substrate is super hard to work with, he said. Our membranes are thinner and more accessible for a wide range of experiments.
The new diamond material fashioned by the researchers offers greater crystal and surface quality, enabling greater control over the coherence of the color centers.
You can peel the membrane off and put it on a wide range of substrates, even put it on a silicon wafer. Its a cheap, flexible and easy way of working with color centers without having to work directly with conventional diamond, Guo said.
Because were able to control and maintain the quantum properties in individual defects within these very thin materials, it makes this platform promising as basis for a quantum technologies,” Delegan said.
####
About DOE/Argonne National Laboratory
Q-NEXT is a U.S. Department of Energy National Quantum Information Science Research Center led by Argonne National Laboratory. Q-NEXT brings together world-class researchers from national laboratories, universities and U.S. technology companies with the single goal of developing the science and technology to control and distribute quantum information. Q-NEXT collaborators and institutions will create two national foundries for quantum materials and devices, develop networks of sensors and secure communications systems, establish simulation and network testbeds, and train the next-generation quantum-ready workforce to ensure continued U.S. scientific and economic leadership in this rapidly advancing field. For more information, visit https://www.q-next.org .
For more information, please click here
Contacts:
Leah Hesla
DOE/Argonne National Laboratory
Copyright © DOE/Argonne National Laboratory
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.
News and information
A sunlight-driven self-healing anti-corrosion coating May 27th, 2022
New route to build materials out of tiny particles May 27th, 2022
Nanoscale chemically ordered-disordered domains in Fe3Pt alloys and their three-dimensional interface and lattice strain May 27th, 2022
Observation of fractional exclusion statistics in quantum critical matter May 27th, 2022
Diabetes drug improves antibacterial treatment speed and effectiveness, researchers report May 27th, 2022
Quantum Physics
Observation of fractional exclusion statistics in quantum critical matter May 27th, 2022
New nanomechanical oscillators with record-low loss May 13th, 2022
Laboratories
Govt.-Legislation/Regulation/Funding/Policy
A new step in the search for room-temperature superconductors May 27th, 2022
Diabetes drug improves antibacterial treatment speed and effectiveness, researchers report May 27th, 2022
On-Chip Photodetection: Two-dimensional material heterojunctions hetero-integration May 13th, 2022
Quantum Computing
New hardware integrates mechanical devices into quantum tech April 22nd, 2022
Sensors
New nanomechanical oscillators with record-low loss May 13th, 2022
A solution to perovskite solar cell scalability problems April 22nd, 2022
Discoveries
How randomly moving electrons can improve cyber security May 27th, 2022
A new step in the search for room-temperature superconductors May 27th, 2022
Diabetes drug improves antibacterial treatment speed and effectiveness, researchers report May 27th, 2022
Materials/Metamaterials
New route to build materials out of tiny particles May 27th, 2022
Studying atomic structure of aluminum alloys for manufacturing modern aircraft March 25th, 2022
Unexplored dimensions of porous metamaterials: Researchers unlock hidden potential in a long-studied group of materials March 18th, 2022
Announcements
How randomly moving electrons can improve cyber security May 27th, 2022
A new step in the search for room-temperature superconductors May 27th, 2022
Diabetes drug improves antibacterial treatment speed and effectiveness, researchers report May 27th, 2022
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
How randomly moving electrons can improve cyber security May 27th, 2022
A new step in the search for room-temperature superconductors May 27th, 2022
Diabetes drug improves antibacterial treatment speed and effectiveness, researchers report May 27th, 2022