Match tier Confirmed
Presence Current · Arkansas
Last published 2026
Sources OpenAlex · ORCID
Refreshed 2026-10-05

Dinesh Baral

Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.

Postdoc Fellow

Also affiliated: University of Wyoming (2020–2026); Jawaharlal Nehru University (2015)

6 h-index 25 pubs 100 cited

  • Antibodies, Monoclonal
  • Humans
  • Vibrio cholerae
  • Biosensing Techniques
  • HEK293 Cells
  • Animals
  • Cattle
  • Cell Survival
  • Electrodes
  • Particle Size
  • Serum Albumin, Bovine
  • Spectroscopy, Fourier Transform Infrared
  • Oxalic Acid
  • Nanotubes
  • Cell Proliferation

Biography and Research Information

OverviewAI-generated summary

Dinesh Baral's research focuses on the development and application of nanomaterials for biosensing and the characterization of novel semiconductor materials. He has investigated iron oxide nanorods and nanoparticles as platforms for detecting Vibrio cholerae, aiming to create biocompatible sensing solutions. His work also extends to the study of advanced semiconductor heterostructures, including GeSn/Ge multiple quantum wells and AlN/GaN micro-Hall effect sensors, exploring their properties for potential electronic applications. Baral has published on topics ranging from magnetic materials like Fe-doped WTe2 to the growth and characterization of strained semiconductor structures. He collaborates with several researchers at the University of Arkansas at Fayetteville, including Nirosh M. Eldose and Fernando Maia de Oliveira, with whom he has co-authored multiple publications. His scholarly contributions are reflected in an h-index of 6 and over 100 citations.

Metrics

  • h-index: 6
  • Publications: 25
  • Citations: 100

Positions

  • Postdoc Fellow 2023–present
    University of Arkansas at Fayetteville ORCID
  • Graduate Assistant 2017–2023
    University of Wyoming Department of Physics and Astronomy ORCID

Selected Publications

  • Te Vacancies Induced Magnetic Domains and Domain Wall Stabilization on Fe 3 GeTe 2 Surfaces (2026)
    Advanced Functional Materials DOI OpenAlex
  • Strain Relaxation and Relative Defect Density with Thickness in MBE-Grown Ge 0.85 Sn 0.15 on Ge(001) (2026)
    Crystal Growth & Design DOI OpenAlex
  • Tunable direct bandgap photoluminescence of GeSn grown on Ge/Si(100) substrate by molecular beam epitaxy growth (2026)
    Journal of Physics D Applied Physics DOI OpenAlex
  • STM and ARPES characterization of quality of GeSn grown on Ge(001) for atomic ordering investigations (2026)
    Journal of Vacuum Science & Technology A Vacuum Surfaces and Films 1 citation DOI OpenAlex
  • Temperature-Dependent Sn Incorporation and Defect Formation in Pseudomorphic SiSn Layers on Si (001) via Molecular Beam Epitaxy (2026)
    Crystals DOI OpenAlex
  • Epitaxial Growth and Structural Evolution of Lattice-Matched SiGeSn/Ge Heterostructures with Si Composition up to 42% (2026)
    SSRN Electronic Journal DOI OpenAlex
  • Determination of composition, strain, and layer thickness of germanium-tin superlattices using x-ray diffraction (2026)
    Applied Physics Letters 2 citations DOI OpenAlex
  • Dual-channel 2DEG micro-Hall effect sensor for extreme environments (2026)
    Applied Physics Letters DOI OpenAlex
  • GeSn alloys with ∼21% Sn grown by effusion cell molecular beam epitaxy (2026)
    Journal of Vacuum Science & Technology A Vacuum Surfaces and Films 1 citation DOI OpenAlex
  • Dislocation-Related Photoluminescence Emission in MBE-Grown GeSn (2025)
    Crystal Growth & Design 7 citations DOI OpenAlex
  • Strain Relaxation and Defect Density Evolution with Thickness in Mbe Grown Ge0.85sn0.15 on Ge(001) (2025)
    SSRN Electronic Journal DOI OpenAlex
  • MBE growth and characterization of strained GeSn/Ge multiple quantum well structures (2025)
    Journal of Physics D Applied Physics 10 citations DOI OpenAlex
  • Effect of temperature on the stability and performance of III-nitride HEMT magnetic field sensors (2024)
    Applied Physics Letters 1 citation DOI OpenAlex
  • Improved Quality of InN Thin Films Using a Thin InGaN Compressive Strain Gradient Layer (2024)
    Crystal Growth & Design 2 citations DOI OpenAlex
  • Possible coexistence of magnetism and paramagnetic singularity in lightly Fe-doped WTe 2 (2024)
    Physical review. B./Physical review. B 3 citations DOI OpenAlex

View all publications on OpenAlex →

Collaboration Network

74 Collaborators 17 Institutions 5 Countries

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