Thin-Film Diamonds
In industrial and high-tech settings, diamonds are particularly valued for their hardness, optical clarity, smoothness, and resistance to chemicals, radiation and electrical fields.
For electronics applications, researchers “dope” diamonds in order to make them conductive, introducing the semiconductor boron into the diamond manufacturing process. In the past, it has been a challenge to imbue electronic devices with diamond-like qualities by applying a doped diamond coating, or thin film because the high temperatures required to apply a doped diamond thin film would destroy sensitive electronics, including biosensors, semiconductors, and photonic and optical devices.
In their Applied Physics Letters paper, a team of researchers at Advanced Diamond Technologies, Inc., in Romeoville, Illinois report creating thin films of boron-doped diamond at temperatures low enough (between 460-600°C) to coat many of these devices.
While low-temperature deposition of boron-doped diamond thin films is not conceptually new, the research team found no evidence in the literature of such diamond films that had both sufficient quality and manufacturing rates fast enough to be commercially useful. Tweaking their own normal-temperature boron doping recipe by both lowering the temperature and adjusting the typical ratio of methane to hydrogen gas yielded a high quality film without appreciable change in conductivity or smoothness compared to diamond films made at higher temperatures. The researchers say more data and study is needed to better understand low-temperature opportunities.
Even so, by further optimizing the recipe, the researchers expect to be able to deposit boron-doped diamond thin films at temperatures even lower than 400° C.
“The lower the deposition temperature, the larger number of electronic device applications we can enable,” said Hongjun Zeng of Advanced Diamond Technologies, Inc. “That will further expand the product categories for thin, smooth, conductive diamond coatings,” Zeng added.
The article, “Low Temperature Boron Doped Diamond” by Hongjun Zeng, Prabhu U. Arumugam, Shabnam Siddiqui, and John A. Carlisle appears in the Journal Applied Physics Letters. See: http://dx.doi.org/10.1063/1.4809671
Authors of this article are affiliated with Advanced Diamond Technologies, Inc. and Argonne National Laboratory.
ABOUT THE JOURNAL
Applied Physics Letters, published by the AIP Publishing LLC, features concise, up-to-date reports on significant new findings in applied physics. See: http://apl.aip.org
Media Contact
More Information:
http://www.aip.orgAll latest news from the category: Physics and Astronomy
This area deals with the fundamental laws and building blocks of nature and how they interact, the properties and the behavior of matter, and research into space and time and their structures.
innovations-report provides in-depth reports and articles on subjects such as astrophysics, laser technologies, nuclear, quantum, particle and solid-state physics, nanotechnologies, planetary research and findings (Mars, Venus) and developments related to the Hubble Telescope.
Newest articles

Hybrid Job Training Boosts Women’s Participation in Nepal
Globally, women’s workforce participation is about 25% lower than men’s, often due to barriers such as domestic responsibilities and cultural norms. Vocational training can increase employment opportunities, but women may…

Drying and Rewetting Cycles Boost Soil CO2 Emissions
Niigata, Japan – The amount of carbon dioxide (CO2) released by microbial decomposition of soil organic carbon on a global scale is approximately five times greater than the amount of…

Improved Treatment Method for Rare Pregnancy-Related Cancer
PORTLAND, Ore. – A new drug delivery system shows promise for treating a rare, aggressive form of cancer affecting pregnant women and new mothers, and it has potential with other…