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Publications

Amity School of Physical Sciences (ASPS) is dedicated to research and education in modern physical sciences such as physics, mathematics, and statistics. The school contributes significantly to the university’s research output through publication of research articles, books and patents. The faculties and researcher have generated substantial body of scientific literature given below.

 Journal Articles (APA style)

2025

  • Gore, P. S., Nishi, , Kumar, M., Yoneda, N., Tsukamoto, H., Wake, H., ... & Morita, M. (2025). Red-shifted excitation enhances the sensitivity of red genetically encoded Ca2+ indicator and enables crosstalk-free two-photon holographic opt physiology. Journal of Biomedical Optics, 30(11), 116003-116003.
  • Kumar, M., & Matoba, O. (2025). Single-shot double-field-of-view polarization holography. Optics Letters, 50(19), 6241-6244.
  • Dodda, V. C., Kuruguntla, L., Ravichandran, N. K., Lee, K. S., Sollapur, R., Damodaran, M., Kumar, M., ... & Muniraj, I. (2025). Overview of photon-counted three-dimensional imaging and related applications. Optics Express, 33(15), 31211-31234.
  • Kumar, M., Pensia, L., Kaur, K., Kumar, R., Awatsuji, Y., & Matoba, O. (2025, June). Advances in optical metrology: High-bandwidth digital holography for transparent objects analysis. In Photonics(Vol. 12, No. 6, p. 617). MDPI.
  • Pensia, L., Kumar, M., Matoba, O., & Kumar, R. (2025). Enhancing field of view of digital holography using an angular multiplexed holographic optical element. Optics Letters, 50(12), 3970-3973.
  • Kumar, M., Pensia, L., Kumar, R., & Matoba, O. (2025). Vibration Measurement of 3D Objects with Singleshot Double Field-of-View High-speed Digital Holography. IEEE Transactions on Instrumentation and Measurement.
  • Kumar, M., Pensia, L., Kumar, R., & Matoba, O. (2025). Lensless Fourier transform multiplexed digital holography. Optics Letters, 50(6), 1909-1912.
  • Kaur, J., Kaur, N., Arya, A., Siwach, K., Dhiman, R., Sharma, P. K., & Sharma, A. (2025). Impact of functionalised Silicon Carbide NPs on the mechanical and dielectric performance of Sago Starch based nanocomposites. Materials Chemistry and Physics, 332, 130264.
  • Mitra, S., Arya, A., & Gaur, A. (2025). Synthesis and Characterization of CuO Nanostructures via Wet-Chemical Route for Supercapacitor Applications: S. Mitra et al. Journal of Electronic Materials, 54(3), 1806-1815.
  • Arya, A., Tanwar, S., Iqbal, M., Sharma, A., & Sharma, A. L. (2025). Synergetic effect driven LaMnO3@ NiO composite based high energy semi-solid supercapacitor. Journal of Energy Storage, 105, 114778.
  • Kumar, A., Kumari, S., Kumar, V., Aggarwal, S., Goyal, P. K., Tomar, A., ... & Arya, A. (2025). Enhanced TC with improved electrical properties by construction of phase boundary in Li+-modified KNN-based piezoelectric ceramics. Journal of Alloys and Compounds, 1015, 178831.
  • Kumar, K., Tanwar, S., Arya, A., & Sharma, A. L. (2025). Sodium-ion conducting PEO-PEMA based composite solid polymer electrolytes: structural, dielectric and electrochemical characteristics. Ionics, 31(4), 3363-3381.
  • Kaur, J., Sharma, S., Chand, P., Arya, A., & Sharma, A. (2025). Synergetic effect driven WO3/MoS2 nanocomposite-based electrode for high-efficiency supercapacitors. Electrochimica Acta, 523, 145965.
  • Kaur, J., Sharma, S., Chand, P., Arya, A., & Sharma, A. (2025). MoO3/MoS2 based nanocomposite electrodes with ultrahigh performance and excellent cyclic stability for supercapacitor application. Materials Science and Engineering: B, 314, 118083.
  • Iqbal, M., Singh, A., Alam, M., Arya, A., & Mahapatra, S. K. (2025). Core–shell mesoporous carbon@ FeS2 nanocubes for advanced quasi-solid-state symmetric and asymmetric configurations. New Journal of Chemistry, 49(28), 12331-12338.
  • Iqbal, M., Singh, A., Saykar, N. G., Arya, A., Mahajan, C. M., & Mahapatra, S. K. (2025). Advances in Molybdenum Disulfide (MoS2) and its Composites: Pioneering Structures, Synthesis, and Quantum Capacitive Performance for Next‐Gen Supercapacitors. Advanced Sustainable Systems, 9(10), e00001.
  • Iqbal, M., Saykar, N. G., Mahapatra, S. K., Kumar, V., & Arya, A. (2025). High-Temperature Supercapacitive Performance of NiCoâ‚‚Oâ‚„ Nanosheets: Effect of Calcination and Device Operating Temperature. Materials Research Bulletin, 113724.
  • Singh, S., Chudasama, B., & Sharma, P. (2025). Room temperature magnetodielectric effect in exchange-coupled hexaferrite composites. Ceram. Int. 51, 62923–62935.https://doi.org/10.1016/j.ceramint.2025.11.011.

2024

  • Tyagi, A., Mandal, A., & Singh, K. P. (2024). Attosecond Physics in a Nutshell: Pushing the Frontier of Ultrafast Science and Technology. Resonance 29, 227.
  • Mandal, A., Alexander, A., Vijayan, S., Gopalan, A., & Deshmukh, P. C. (2024). Generic Orbits in Central Force Motion Part 1: Problem and Hooke’s Demonstration. Resonance 29, 1285. 
  • Mandal, A., Alexander, A., Vijayan, S., Gopalan, A., & Deshmukh, P. C. (2024). Generic Orbits in Central Force Motion Part 2: A Few Numerical Studies. Resonance 29, 1445. 
  • Matsuda, S., Shoda, M., Yoneda, N., Kumar, M., Murata, T., Muniraj, I., ... & Matoba, O. (2024). Photon-counting three-dimensional fluorescence imaging based on the transport of intensity equation. Optics Express, 32(23), 42005-42015.
  • Tounsi, Y., Kumar, M., Kaur, K., Nassim, A., Mendoza-Santoyo, F., & Matoba, O. (2024). Similarity study between speckle shearing phase and speckle correlation phase derivative using Riesz transform. Optical Engineering, 63(11), 111810-111810.
  • Kumar, D., Sharma, K., Kumar, M., & Kumar, R. (2024). Controlling the optical wavefronts for multiparametric sensing: Holography cum metamaterial centric perspectives. Optics & Laser Technology, 176, 110954.
  • Kumar, M., Yoneda, N., Pensia, L., Muniraj, I., Anand, V., Kumar, R., ... & Matoba, O. (2024). Light origami multi-beam interference digital holographic microscope for live cell imaging. Optics & Laser Technology, 176, 110961.
  • Kumar, M., Awatsuji, Y., Murata, T., & Matoba, O. (2024). Monitoring the dynamics of cultured tobacco cells division by TIE-based 3D fluorescence microscopy with two-synchronized image sensors. Optics and Lasers in Engineering, 178, 108222.
  • Matsuda, S., Yoneda, N., Kumar, M., Murata, T., & Matoba, O. (2024). 3D fluorescence imaging through a scattering medium using the transport of intensity equation and Fresnel ping-pong algorithm. Optics Express, 32(14), 23989-24006.
  • Matsuda, S., Shoda, M., Yoneda, N., Kumar, M., Watanabe, W., Murata, T., & Matoba, O. (2024). 3D fluorescence imaging through scattering medium using transport of intensity equation and iterative phase retrieval. Optics Express, 32(6), 10599-10617.
  • Pensia, L., Kumar, M., & Kumar, R. (2024). Dual field-of-view off-axis spatially multiplexed digital holography using Fresnel’s bi-mirror. Sensors, 24(3), 731.
  • Kumar, M., Murata, T., & Matoba, O. (2024). Live cell imaging by single-shot common-path wide field-of-view reflective digital holographic microscope. Sensors, 24(3), 720.
  • Bisht, A., Maheshwari, S., Sharma, Y. D., & Yadav, O. P. (2024). Weak nonlinear thermo bioconvection: Heat transfer via artificial neural network. International Communications in Heat and Mass Transfer, 158, Article 108090.
  • Bisht, A., Upreti, H., & Joshi, N. (2024). MHD Darcy–Forchheimer flow and double-diffusive modeling of Maxwell fluid over rotating stretchable surface: A computational study. Modern Physics Letters B, 38(29), Article 2450227.
  • Bisht, A., Maheshwari, S., & Upreti, H. (2024). Bioconvective flow of thermally radiative Casson nanofluid with aerobic microorganisms over a stretching surface. Chinese Journal of Physics, 90, 536-550.
  • Bisht, A., & Maheshwari, S. (2024). Heat transfer analysis in a horizontal anisotropic porous channel with Bi-viscous Bingham nanofluid and temperature-dependent Brownian diffusion. Multidiscipline Modeling in Materials and Structures, 20(4), 687-707.
  • Iqbal, M., Saykar, N. G., Singh, A., Ahmed, I., Arya, A., Haldar, K. K., & Mahapatra, S. K. (2024). WS2/Mesoporous Carbon Nanostructures as a Bifunctional Electrode for All Quasi‐Solid‐State Supercapacitor and Oxygen Evolution Reaction. Advanced Materials Technologies, 9(7), 2301797.
  • Nagar, R. S., Sharma, J., Patel, M., Mishra, K., Arya, A., Kanchan, D. K., ... & Kumar, D. (2024). Impact of Introducing EMIM-BF4 as Ionic Liquid Solvent on Electrochemical Properties of PVdF–HFP Based Sodium Ion Conducting Gel Polymer Electrolytes: RS Nagar et al. Journal of Electronic Materials, 53(12), 7419-7431.

2023

  • Kumon, Y., Hashimoto, S., Inoue, T., Nishio, K., Kumar, M., Matoba, O., ... & Awatsuji, Y. (2023). Three-dimensional video imaging of dynamic temperature field of transparent objects recorded by a single-view parallel phase-shifting digital holography. Optics & Laser Technology, 167, 109808.
  • Kumar, M., Murata, T., & Matoba, O. (2023). Double field-of-view single-shot common-path off-axis reflective digital holographic microscope. Applied Physics Letters, 123(22).
  • Pensia, L., Kumar, M., & Kumar, R. (2023). A compact digital holographic system based on a multifunctional holographic optical element with improved resolution and field of view. Optics and Lasers in Engineering, 169, 107744.
  • Morita, M., Atomura, Y., Gora, P., Kumar, M., Quan, X., Matoba, O., & Wake, H. (2023, July). Analysis of Local Intracellular Signaling in Astrocytes Using Two-Photon Holographic Microscopy. In GLIA 71, pp. E231-E231, WILEY.
  • Tounsi, Y., Kumar, M., Kaur, K., Santoyo, F. M., Matoba, O., & Nassim, A. (2023). Speckle-noise filtering based on non-local mean sparse principal component analysis method. Optics and Lasers in Engineering, 164, 107507.
  • Kumar, M., Pensia, L., & Kumar, R. (2023). Highly stable vibration measurements by common-path off-axis digital holography. Optics and Lasers in Engineering, 163, 107452.
  • Kumar, M., Anand, V., & Rosen, J. (2023). Interferenceless incoherent digital holography with binary coded apertures optimized using direct binary search. Optics and Lasers in Engineering, 160, 107306.
  • Kaur, N., Kaur, J., Kumar, R., Arya, A., & Sharma, A. (2023). Improved dielectric properties of Sago Starch-Sodium Alginate (SS-SA) blend embedded with Cuc-Ags nanoparticles. Materials Chemistry and Physics, 309, 128442.

Books/Book Chapter

  • Yasuhiro Awatsuji, Yuki Kumon, Sudheesh K Rajput, Tomoyoshi Inoue, Kenzo Nishio, Hou Natsu, Manoj Kumar, and Osamu Matoba: Single-Shot Three-Dimensional Imaging of Dynamic and Transparent Object by Parallel Phase-Shifting Digital Holography. In book: 19th Workshop on Information Optics, Feb 2026. DOI: 10.1007/978-3-032-11838-7_3
  • Osamu Matoba, Manoj Kumar, Naru Yoneda, Mitsuhiro Morita, Yosuke Tamada, and Yasuhiro Awatsuji: Two-photon holographic microscope. In A practical textbook on imaging and image analysis to get the right results: Choosing the right microscope for your purpose, imaging, and building a quantitative analysis flow. Yodosha May 2024 (ISBN: 9784758122719).
  • Bisht, A., Maheshwari, S., & Bisht, A. S. (2025). Computational study of heat transfer in Sisko hybrid nanofluid flowing over a radially stretching disc. Applications of hybrid nanofluids in science and engineering (pp. 261-277). CRC Press.
  • Maheshwari, S., Bisht, A., & Sharma, A. (2025). Bioconvective flow of Casson nanofluid. In Nanofluid heat transfer (pp. 397–412). John Wiley & Sons, Inc.

Patents

  • Title: A Method for Synthesizing Biomass-Derived Catalysts from Tea Waste Modified with Copper Iodide, Inventor: Gaurav Joshi, Bhupinder Kumar, Ashish Ranjan Dwivedi, Anil Arya

Application No.: 202411021636 A, Publication Date: April 26, 2024

  • Title: A supercapacitor for a regenerative braking system and process thereof

Inventor:Anil Arya, Annu Sharma, A. L. Sharma

Application No.: 202611007320, Publication Date: March 13, 2026


Research projects

The faculty members of theAmity School of Physical Sciencesat Amity University Punjab are engaged in several research projects funded by national agencies. Below is a representative overview of research projects and themes undertaken by faculty members of ASPS.

Sr No

Project Title

Funding Agency

Name of the PI

Period

Grant Amount

Duration

From

To

1.

Modulating the excited state of emission centers via band gap engineering to prepare efficient nano-dosimeters

ISRO

Dr. Suchinder Sharma (PI)

2026

2029

31 lacs

3 years

2.

Develop new long persistent nanoparticles for bioimaging

ANRF

Dr. Suchinder Sharma (PI)

2022

2024

29 lacs

2 years

3.

Development of Novel UV emitting long persistent perovskite materials and correlating the underlying mechanism with different morphologies

UGC- DAE

Dr. Suchinder Sharma (PI)

2022

2026

1.35 lacs

4 years

4.

3D optogenetics for functional brain mapping

ANRF

Dr. Manoj Kumar (PI)

2024

2029

119 lacs

5 years