This study investigates the compositional analysis and growth of β-(In Ga )O thin films on (010) β-GaO substrates using mist chemical vapor deposition (CVD), including the effects of the growth temperature. We investigated the correlation between In composition and -axis length in coherently grown films, vital for developing high-electron-mobility transistors and other devices based on β-(In Ga )O. Analytical techniques, including X-ray diffraction (XRD), reciprocal space mapping, and atomic force microscopy, were employed to evaluate crystal structure, strain relaxation, and surface morphology. The study identified a linear relationship between In composition and -axis length in coherently grown films, facilitating accurate composition determination from XRD peak positions. The films demonstrated high surface flatness with root-mean-square roughness below 0.6 nm, though minor relaxation and granular features emerged at higher In compositions ( = 0.083) at the growth temperature of 750°C. XRD results revealed that lattice relaxation were observed at a growth temperature of 700°C despite low In composition. In contrast, at 800°C, the In composition was higher than at 750°C, and coherent growth was achieved. The surface morphology was the flattest at 750°C. These findings indicate that the growth temperature plays a crucial role in the mist CVD growth of β-(In Ga )O thin films. This study offers insights into the relationship between In composition and lattice parameters in coherently grown β-(In Ga )O films, as well as the effect of growth conditions, contributing to the advancement of ultra-wide bandgap semiconductor device development.
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http://dx.doi.org/10.1080/14686996.2024.2414733 | DOI Listing |
Int J Ophthalmol
December 2024
Shenzhen Eye Institute, Shenzhen Eye Hospital, Jinan University, Shenzhen 518040, Guangdong Province, China.
Aim: To explore the current application and research frontiers of global ophthalmic optical coherence tomography (OCT) imaging artificial intelligence (AI) research.
Methods: The citation data were downloaded from the Web of Science Core Collection database (WoSCC) to evaluate the articles in application of AI in ophthalmic OCT published from January 1, 2012 to December 31, 2023. This information was analyzed using CiteSpace 6.
Nanophotonics
November 2023
Department of Semiconductor Physics and Energy Harvest Storage Research Center, University of Ulsan, Ulsan 44610, South Korea.
Controlling coherent light-matter interactions in semiconductor microcavities is at the heart of the next-generation solid-state polaritonic devices. Organic-inorganic hybrid perovskites are potential materials for room-temperature polaritonics owing to their high exciton oscillator strengths and large exciton binding energies. Herein, we report on strong exciton-photon coupling in the micro-platelet and micro-ribbon shaped methylammonium lead bromide single crystals.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
November 2024
Institute of Nanotechnology, Karlsruhe Institute of Technology (KIT), Karlsruhe, 76131, Germany.
The delamination cracking from planar gliding along the (003) facets and anisotropic lattice strain perpendicular to the (003) facets inevitable lead to degradation of Ni-rich single-crystal cathode materials, adversely affecting their cyclability. Herein, we rationally design a single-crystal LiNiCoMnO (SC90) cathode with robust chemo-mechanical properties, in which coherently grown MgO octahedra and BO tetrahedra are incorporated into the lattice, and a stabilizing Mg(BO) layer is concurrently formed on the particle surface. Multiscale in/ex situ characterizations and theoretical calculations indicate that introducing the MgO and BO units leads to a "pinning effect" within the layered structure.
View Article and Find Full Text PDFRSC Adv
November 2024
State Key Laboratory of Advanced Metal Materials, University of Science & Technology Beijing Beijing 102206 China.
Fe-Ni nanowires (NWs) containing coherent twin boundaries (CTBs) have received widespread attention in recent years owing to their unique chemical properties. It is important to understand the influence of CTBs on the deformation mechanism of Fe-Ni alloy NWs to develop functional materials based on Fe-Ni alloy NWs. The deformation process of BCC Fe-Ni NWs containing several CTBs under uniaxial stretching was simulated using the molecular dynamics method.
View Article and Find Full Text PDFSci Technol Adv Mater
August 2024
Department of Materials Physics, Nagoya University, Nagoya, Japan.
Understanding the nature of grain boundaries is a prerequisite for fabricating high-performance superconducting bulks and wires. For iron-based superconductors [e.g.
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