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Nawaz, Muhammad
Publications (3 of 3) Show all publications
Delgado Carrascon, R., Richter, S., Nawaz, M., Paskov, P. P. & Darakchieva, V. (2022). Hot-Wall MOCVD for High-Quality Homoepitaxy of GaN: Understanding Nucleation and Design of Growth Strategies. Crystal Growth & Design, 22(12), 7021-7030
Open this publication in new window or tab >>Hot-Wall MOCVD for High-Quality Homoepitaxy of GaN: Understanding Nucleation and Design of Growth Strategies
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2022 (English)In: Crystal Growth & Design, ISSN 1528-7483, E-ISSN 1528-7505, Vol. 22, no 12, p. 7021-7030Article in journal (Refereed) Published
Abstract [en]

Thick GaN layers with a low concentration of defects are the key to enable next-generation vertical power electronic devices. Here, we explore hot-wall metalorganic chemical vapor deposition (MOCVD) for the development of GaN homoepitaxy. We propose a new approach to grow high quality homoepitaxial GaN in N2-rich carrier gas and at a higher supersaturation as compared to heteroepitaxy. We develop a low temperature GaN as an optimum nucleation scheme based on the evolution and thermal stability of the GaN surface under different gas compositions and temperatures. Analysis in the framework of nucleation theory of homoepitaxial layers simultaneously grown on GaN templates on SiC and on hydride vapor phase epitaxy GaN substrates is presented. We show that residual strain and screw dislocation densities affect GaN nucleation and subsequent growth leading to distinctively different morphologies of GaN homoepitaxial layers grown on GaN templates and native substrates, respectively. The established comprehensive picture provides a guidance for designing strategies for growth conditions optimization in GaN homoepitaxy. GaN with atomically flat and smooth epilayer surfaces with a root-mean-square roughness value as low as 0.049 nm and low background carbon concentration of 5.3 x 1015 cm-3 has been achieved. It is also shown that there is no generation of additional dislocations during homoepitaxial growth. Thus, our results demonstrate the potential of the hot-wall MOCVD technique to deliver high-quality GaN material for vertical power devices.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2022
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:liu:diva-190211 (URN)10.1021/acs.cgd.2c00683 (DOI)000883760600001 ()
Note

Funding Agencies|Swedish Governmental Agency for Innovation Systems (VINNOVA) [2016-05190]; Linkoping University; Chalmers University of technology; Ericsson; Epiluvac; FMV; Gotmic; Hexagem; Hitachi Energy Research; On Semiconductor; Saab; SweGaN; aUMS; Volvo Cars; Swedish Research Council VR [2016-00889]; Swedish Foundation for Strategic Research [RIF14-055, EM16-0024]; Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University, Faculty Grant [2009-00971]; NanoLund

Available from: 2022-11-29 Created: 2022-11-29 Last updated: 2023-12-28Bibliographically approved
Tran, D., Delgado Carrascon, R., Muth, J. F., Paskova, T., Nawaz, M., Darakchieva, V. & Paskov, P. P. (2021). Correction: Erratum: “Phonon-boundary scattering and thermal transport in AlxGa1−xN: Effect of layer thickness” [Appl. Phys. Lett. 117, 252102 (2020)]. Applied Physics Letters, 118(18), Article ID 189901.
Open this publication in new window or tab >>Correction: Erratum: “Phonon-boundary scattering and thermal transport in AlxGa1−xN: Effect of layer thickness” [Appl. Phys. Lett. 117, 252102 (2020)]
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2021 (English)In: Applied Physics Letters, ISSN 0003-6951, E-ISSN 1077-3118, Vol. 118, no 18, article id 189901Article in journal (Other academic) Published
Place, publisher, year, edition, pages
AIP Publishing, 2021
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:liu:diva-179850 (URN)10.1063/5.0054625 (DOI)000698625800013 ()2-s2.0-85105880689 (Scopus ID)
Available from: 2021-10-04 Created: 2021-10-04 Last updated: 2023-12-28Bibliographically approved
Tran, D., Delgado Carrascon, R., Muth, J. F., Paskova, T., Nawaz, M., Darakchieva, V. & Paskov, P. P. (2020). Phonon-boundary scattering and thermal transport in AlxGa1-xN: Effect of layer thickness. Applied Physics Letters, 117(25), Article ID 252102.
Open this publication in new window or tab >>Phonon-boundary scattering and thermal transport in AlxGa1-xN: Effect of layer thickness
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2020 (English)In: Applied Physics Letters, ISSN 0003-6951, E-ISSN 1077-3118, Vol. 117, no 25, article id 252102Article in journal (Refereed) Published
Abstract [en]

Thermal conductivity of AlxGa1-xN layers with 0 <= x <= 0.96 and variable thicknesses is systematically studied by combined thermoreflectance measurements and a modified Callaway model. We find a reduction in the thermal conductivity of AlxGa1-xN by more than one order of magnitude compared to that of GaN, which indicates a strong effect of phonon-alloy scattering. It is shown that the short-mean free path phonons are strongly scattered, which leads to a major contribution of the long-mean free path phonons to the thermal conductivity. In thin layers, the long-mean free path phonons become efficiently scattered by the boundaries, resulting in a further decrease in the thermal conductivity. Also, an asymmetry of thermal conductivity as a function of Al content is experimentally observed and attributed to the mass difference between Ga and Al host atoms.

Place, publisher, year, edition, pages
AMER INST PHYSICS, 2020
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:liu:diva-172917 (URN)10.1063/5.0031404 (DOI)000603064200002 ()
Note

Funding Agencies|Swedish Governmental Agency for innovation systems (VINOVA) under Competence Center Program [2016-05190]; Swedish Research Council VRSwedish Research Council [2016-00889, 2017-03714]; Swedish Foundation for Strategic ResearchSwedish Foundation for Strategic Research [RIF14-055, EM16-0024]; Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University, Faculty Grant SFO Mat LiU [2009-00971]; NSFNational Science Foundation (NSF) [CBET-1336464, DMR-1506159]

Available from: 2021-01-26 Created: 2021-01-26 Last updated: 2023-12-28Bibliographically approved
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