Creating two-dimensional solid helium via diamond lattice confinement
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Published:2022-10-11
Issue:1
Volume:13
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Lin WeitongORCID, Li YiranORCID, de Graaf SytzeORCID, Wang Gang, Lin JunhaoORCID, Zhang Hui, Zhao ShijunORCID, Chen Da, Liu Shaofei, Fan JunORCID, Kooi Bart J.ORCID, Lu YangORCID, Yang TaoORCID, Yang Chin-Hua, Liu Chain TsuanORCID, Kai Ji-jungORCID
Abstract
AbstractThe universe abounds with solid helium in polymorphic forms. Therefore, exploring the allotropes of helium remains vital to our understanding of nature. However, it is challenging to produce, observe and utilize solid helium on the earth because high-pressure techniques are required to solidify helium. Here we report the discovery of room-temperature two-dimensional solid helium through the diamond lattice confinement effect. Controllable ion implantation enables the self-assembly of monolayer helium atoms between {100} diamond lattice planes. Using state-of-the-art integrated differential phase contrast microscopy, we decipher the buckled tetragonal arrangement of solid helium monolayers with an anisotropic nature compressed by the robust diamond lattice. These distinctive helium monolayers, in turn, produce substantial compressive strains to the surrounded diamond lattice, resulting in a large-scale bandgap narrowing up to ~2.2 electron volts. This approach opens up new avenues for steerable manipulation of solid helium for achieving intrinsic strain doping with profound applications.
Funder
National Natural Science Foundation of China Guangdong Innovative and Entrepreneurial Research Team Program Shenzhen Science and Technology Program Research Grants Council, University Grants Committee
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
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