DINESH KUMAR PANDA
Indira Gandhi Institute of Technology, Sarang, BJB College, Bhubaneswar, National Institute of Science Education and Research Bhubaneswar, Homi Bhabha National Institute, Pondicherry University
About
National Researcher in Quantum Information, Quantum Cryptography, Quantum Computing, Nonlocality, Quantum Entanglement, Quantum walks, Quantum optics, Open Quantum Systems and Decoherence.
Current Employers: National Institute of Science Education and Research (NISER), India; Homi Bhabha National Institute, Mumbai, India
1. Former Assistant Professor (Physics) at Indira Gandhi Institute of Technology, Sarang, India [2020-21]
2. Former Lecturer (Physics) at B.J.B. College, Bhubaneswar, India [2019-20]
3. Gold Medalist in Physics from Pondicherry University (A Central University of Govt. of India) [2019]
4. National Eligibility Test (Rank: CSIR-UGC NET JRF), GATE 2020 Qualified (Govt. of India)
5. Best Graduate (Physics Honours) and Topper of Govt. College (Auto.), Angul (Utkal University, Odisha) [2017]
Employment
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Indira Gandhi Institute of Technology, Sarang Assistant Professor2020 - 2021
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BJB College, Bhubaneswar Lecturer2019 - 2019
Education
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National Institute of Science Education and Research Bhubaneswar PhD (Doctoral Research) in Physics2021 - Present
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Homi Bhabha National Institute PhD in Physics2021 - Present
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Pondicherry University Master of Science2017 - 2019
Projects & Funding
Projects & funding information is unavailable.
Publications (5)
- Phase versus coin versus position disorder as a probe for the resilience and revival of single-particle entanglement in cyclic quantum walks Save
- Designing three-way-entangled and nonlocal two-way-entangled single-particle states via alternate quantum walks Save
- Quantum cryptographic protocols with dual messaging system via 2D alternate quantum walk of a genuine single-photon entangled state Save
- Recurrent generation of maximally entangled single-particle states via quantum walks on cyclic graphs Save
- Generating highly entangled states via discrete-time quantum walks with Parrondo sequences Save