Producing Defectless Metal Crystal of Unprecedented Size
- IBS scientists report in Science a new method to obtain
large single crystals up to 32 ㎠, made of copper, nickel, cobalt, platinum, or palladium
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A research group at the Center for Multidimensional Carbon Materials, within the Institute for Basic Science (IBS), have published in Science about a new method to convert inexpensive polycrystalline metal foils to single crystals with superior properties. It is expected that these materials will find many uses in science and technology.
The structure of most metal materials can be thought of as a patchwork of different tiny crystals, bearing some defects on the borders between each patch. These defects, known as grain boundaries (GBs), worsen the electrical and sometimes mechanical properties of the metal. Single crystal metals, instead, have no GBs and show higher electrical conductivity and other enhanced qualities that can play a major role in multiple fields, such as electronics, plasmonics, and catalysis, among others. Single crystal metal foils have attracted great attention also because certain single crystal metals, such as copper, nickel, and cobalt, are suitable for the growth of defectless graphene, boron nitride, and diamond on top of them.
Single crystals are normally fabricated beginning with a 'crystal seed'. Conventional approaches, such as the Czochralski or Bridgman methods, or others based on the deposition of thin metal films on single crystal inorganic substrates, achieve small single crystals at high processing costs.
To unlock the full potential of such metal structures, the IBS team led by Rodney Ruoff at Ulsan National Institute of Science and Technology (UNIST), along with JIN Sunghwan and SHIN Hyung-Joon, invented the "contact-free annealing" (CFA) technique. CFA involves heating the polycrystalline metal foils to a temperature slightly below the melting point of each metal. This new method does not need single crystal seeds or templates, which limit the maximum crystal size, and was tested with five different types of metal foils: copper, nickel, cobalt, platinum, and palladium. It resulted in a 'colossal grain growth', reaching up to 32 square centimeters for copper.
The details of the experiment varied according to the metal used. In the case of copper, quartz holders and a rod were used to hang the metal foil, like clothes suspended on clothes lines. Then, the foil was heated in a tube-shaped furnace to approximately 1050 degrees Celsius (1323 degrees Kelvin), a temperature close to copper's melting point (1358 K) for several hours in an atmosphere with hydrogen and argon, and then cooled down.
Letizia Diamante, click HERE to see the original post on the IBS website
Notes for editors
- References
Sunghwan Jin, Ming Huang, Youngwoo Kwon, Leining Zhang, Bao-Wen Li, Sangjun Oh, Jichen Dong, Da Luo, Mandakini Biswal, Benjamin V. Cunning, Pavel V. Bakharev, Inyong Moon, Won Jong Yoo, Dulce C. Camacho-Mojica, Yong-Jin Kim, Sun Hwa Lee, Bin Wang, Won Kyung Seong, Manav Saxena, Feng Ding, Hyung-Joon Shin, Rodney S. Ruoff. Colossal grain growth yields single crystal metal foils by contact-free annealing. Science (2018). DOI: https://doi.org/10.1126/science.aao3373
- Media Contact
For further information or to request media assistance, please contact: Mr. Kyungyoon Min, Head of Communications Team, Institute for Basic Science (IBS) (+82-42-878-8156, kymin@ibs.re.kr); or Ms. Carol Kim, Global Officer, Communications Team, IBS (+82-42-878-8133, clitie620@ibs.re.kr).
- About the Institute for Basic Science (IBS)
IBS was founded in 2011 by the government of the Republic of Korea with the sole purpose of driving forward the development of basic science in South Korea. IBS has launched 28 research centers as of October 2018. There are nine physics, one mathematics, six chemistry, eight life science, one earth science, and three interdisciplinary research centers.
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