Biography

Prof. Bishnu Prasad Khanal

Sandia National Laboratories, USA

Professor


Email: [email protected]


Qualifications

Dec 2009 Ph.D., Chemistry, Rice University, USA

Nov 2002 M.S., Chemistry, Tribhuvan University, Nepal


Publications (selected)


  1. Khanal, B. P., & Zubarev, E. R. (2026). Chemical Fusion of Gold Nanorods into Continuous Ring Nanostructures. Materials, 19(5), Article 924.
  2. Khanal, B. P., & Dugger, M. (2025). Optimization of edge bead removal (EBR) process to enhance defect reduction in optical lithography. Microelectronic Engineering, 298, Article 103210.
  3. Chao, P., Polonsky, A., & Winter, I., et al. (2024). Towards engineering the growth morphology of anisotropic bicrystals. Sandia National Laboratories (SNL-NM), Albuquerque, NM (United States).
  4. Khanal, B. P., & Zubarev, E. R. (2022). Self-assembly of Nanocrystals into ring-like superstructures: When shape, size, and material do not matter. Langmuir, 38(12), 3896–3906.
  5. Khanal, B. P., & Zubarev, E. R. (2021). Synthesis of Asymmetric One-Dimensional Pd on Au Bimetallic Nanostructures. Langmuir, 37(32), 9901–9909.
  6. Khanal, B. P., & Zubarev, E. R. (2020). Gold nanowires from nanorods. Langmuir, 36(49), 15030–15038.
  7. Khanal, B. P., & Zubarev, E. R. (2020). Solution synthesis of anisotropic gold microcrystals. Chemical Communications, 56(78), 11653–11656.
  8. Khanal, B. P., & Zubarev, E. R. (2019). Chemical transformation of nanorods to nanowires: Reversible growth and dissolution of anisotropic gold nanostructures. ACS Nano, 13(2), 2370–2378.
  9. Khanal, B. P., & Zubarev, E. R. (2019). Gram‐Scale Synthesis of Isolated Monodisperse Gold Nanorods. Chemistry–A European Journal, 25(6), 1595–1600.
  10. Pelton, M., Wild, B., & Yan, Z., et al. (2013). Using metal nanowires to move light and using light to move metal nanowires. APS March Meeting Abstracts 2013, J20.003.
  11. Chantry, R. L., Atanasov, I., & Siriwatcharapiboon, W., et al. (2013). An atomistic view of the interfacial structures of AuRh and AuPd nanorods. Nanoscale, 5(16), 7452–7457.
  12. Vigderman, L., Khanal, B. P., & Zubarev, E. R. (2012). Functional gold nanorods: synthesis, self‐assembly, and sensing applications. Advanced Materials, 24(36), 4811–4841.
  13. Khanal, B. P., Pandey, A., & Li, L., et al. (2012). Generalized synthesis of hybrid metal–semiconductor nanostructures tunable from the visible to the infrared. ACS Nano, 6(5), 3832–3840.
  14. Wild, B., Cao, L., & Sun, Y., et al. (2012). Propagation lengths and group velocities of plasmons in chemically synthesized gold and silver nanowires. ACS Nano, 6(1), 472–482.
  15. Chang, W. S., Willingham, BA., & Slaughter, L. S., et al. (2011). Low absorption losses of strongly coupled surface plasmons in nanoparticle assemblies. Proceedings of the National Academy of Sciences, 108(50), 19879–19884.
  16. Chang, W. S., Slaughter, L. S., & Willingham, B. A., et al. (2011). Collective plasmon resonances in quasi 1D nanoparticle assemblies. Abstracts of Papers of the American Chemical Society, 242.
  17. Zubarev, E. R., & Khanal, B. P. (2011). Gram-Scale Synthesis of Well-Defined Gold Nanorods. US Patent App. 12/595,705.
  18. Swanglap, P., Slaughter, L. S., & Chang, W. S., et al. (2011). Seeing double: coupling between substrate image charges and collective plasmon modes in self-assembled nanoparticle superstructures. ACS Nano, 5(6), 4892–4901.
  19. Alvarez-Puebla, R. A., Agarwal, A., & Manna, P., et al. (2011). Gold nanorods 3D-supercrystals as surface enhanced Raman scattering spectroscopy substrates for the rapid detection of scrambled prions. Proceedings of the National Academy of Sciences, 108(20), 8157–8161.
  20. Stewart, J., Padilha, L., & Lee, D., et al. (2011). A comparative study of carrier multiplication in PbS and PbSe nanocrystals. APS March Meeting Abstracts 2011, W34.011.



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WOS ResearcherID: AAX-6472-2021

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