Puzzling robust 2D metallic conductivity in undoped β-Ga 2 O 3 thin films
Materials Today Physics, ISSN: 2542-5293, Vol: 8, Page: 10-17
2019
- 25Citations
- 37Captures
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Example: if you select the 1-year option for an article published in 2019 and a metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019. If you select the 3-year option for the same article published in 2019 and the metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019, 2018 and 2017.
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Article Description
Here, we report the analogy of an extremely stable topological-like ultra-wide bandgap insulator, a solid that is a pure insulator in its bulk but has a metallic conductive surface, presenting a two-dimensional conductive channel at its surface that challenges our current thinking about semiconductor conductivity engineering. Nominally undoped epitaxial β -Ga 2 O 3 thin films without any detectable defect (after a range of state-of-the-art techniques) showed the unexpectedly low resistivity of 3 × 10 −2 Ωcm which was found to be also resistant to high dose proton irradiation (2 MeV, 5 × 10 15 cm −2 dose) and was largely invariant (metallic) over the phenomenal temperature range of 2 K up to 850 K. The unique resilience and stability of the electrical properties under thermal and highly ionizing radiation stressing, combined with the extended transparency range (thanks to the ultra-wide bandgap) and the already known toughness under high electrical field could open up new perspectives for use as expanded spectral range transparent electrodes (e.g., for UV harvesting solar cells or UV LEDs/lasers) and robust Ohmic contacts for use in extreme environments/applications and for novel optoelectronic and power device concepts.
Bibliographic Details
http://www.sciencedirect.com/science/article/pii/S254252931830138X; http://dx.doi.org/10.1016/j.mtphys.2018.11.006; http://www.scopus.com/inward/record.url?partnerID=HzOxMe3b&scp=85063045034&origin=inward; https://linkinghub.elsevier.com/retrieve/pii/S254252931830138X; https://dx.doi.org/10.1016/j.mtphys.2018.11.006
Elsevier BV
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