Nanotechnology and Its Impact on Physical Sciences

Authors

  • Monica Madjozi Rhodes University

DOI:

https://doi.org/10.47941/jps.1630
Abstract views: 54
PDF downloads: 39

Keywords:

Nanotechnology, Physical Sciences, Impact, Research, Advancements

Abstract

Purpose: The main objective of this study was to explore nanotechnology and its impact on physical sciences.

Methodology: The study adopted a desktop research methodology. Desk research refers to secondary data or that which can be collected without fieldwork. Desk research is basically involved in collecting data from existing resources hence it is often considered a low cost technique as compared to field research, as the main cost is involved in executive’s time, telephone charges and directories. Thus, the study relied on already published studies, reports and statistics. This secondary data was easily accessed through the online journals and library.

Findings: The findings revealed that there exists a contextual and methodological gap relating to nanotechnology and its impact on physical sciences. Preliminary empirical review revealed that nanotechnology has significantly transformed physical sciences, particularly in physics, chemistry, materials science, and condensed matter physics. It has facilitated the development of novel materials and devices, enabling advancements in quantum technologies and nanoelectronics. Interdisciplinary collaboration is key, emphasizing the need for researchers from diverse scientific backgrounds to work together to harness nanotechnology's full potential. Additionally, the study underscores the importance of ongoing research to address ethical, safety, and environmental concerns associated with nanotechnology, ensuring its sustainable integration into physical sciences.

Unique Contribution to Theory, Practice and Policy: The Quantum Confinement Theory, Materials Science and Nanomaterials Theory and the Interdisciplinary Collaboration Theory may be used to anchor future studies on nanotechnology. The recommendations stemming from the study advocated for fostering interdisciplinary collaboration among researchers, investing in nanoscience education, promoting ethical and responsible research practices, and supporting long-term environmental assessments. These suggestions aim to facilitate the seamless integration of nanotechnology into the physical sciences, ensuring that it leads to innovative breakthroughs while addressing ethical, safety, and environmental considerations.

Downloads

Download data is not yet available.

References

African Physical Society. (2020). About Us. https://www.africanphysicalsociety.org/about-us/

African Union Commission. (2014). Science, Technology and Innovation Strategy for Africa 2024.

American Chemical Society. (2021). CAS REGISTRY SM passes milestone of 200 million small molecules. https://www.acs.org/content/acs/en/pressroom/newsreleases/2021/march/cas-registry-200-million-small-molecules.html

Blanco, E., Shen, H., & Ferrari, M. (2015). Nanotechnology in Nanomedicine: Applications and Challenges. Drug Discovery Today, 20(7), 824-839.

Brus, L. E. (1986). Electronic Wave Functions in Semiconductor Clusters: Experiment and Theory. The Journal of Physical Chemistry, 90(12), 2555-2560.

CERN. (2021). The Higgs boson. https://home.cern/science/physics/higgs-boson

Chen, A. (2016). Platinum-Based Nanostructured Materials: Synthesis, Properties, and Applications. Chemical Reviews, 110(6), 3767-3804.

Chen, L., & Wang, Q. (2018). Nanotechnology in Quantum Physics: Advancements and Challenges. Nano Letters, 18(7), 4255-4261.

Drexler, K. E. (1981). Molecular Engineering: An Approach to the Development of General Capabilities for Molecular Manipulation. Proceedings of the National Academy of Sciences, 78(9), 5275-5278.

Etheridge, M. L., Campbell, S. A., Erdman, A. G., Haynes, C. L., Wolf, S. M., & McCullough, J. (2013). The Big Picture on Nanomedicine: The State of Investigational and Approved Nanomedicine Products. Nanomedicine: Nanotechnology, Biology, and Medicine, 9(1), 1-14.

GSSTI - Ghana Space Science and Technology Institute. (2021). About Us. http://www.gssti.coc.com.gh/about-us/

Higher Education Statistics Agency (HESA). (2022). Higher education student statistics: UK, 2020/21. https://www.hesa.ac.uk/data-and-analysis/students/what-study

Ishiwata, S., & Taguchi, Y. (2016). Quantum Materials Research in Japan. Journal of Applied Physics, 120(21), 211101. DOI: 10.1063/1.4971893

Japan Science and Technology Agency (JST). (2021). Materials Science and Technology in Japan. Retrieved from https://www.jst.go.jp/pan-asia/en/ma/index.html

Jones, T. W., Liu, X., & Chen, Y. (2019). A review of material systems for hydrogen storage in solid form at ambient temperature and pressure. Materials Today, 24, 69-76. https://doi.org/10.1016/j.mattod.2019.01.015

Klaine, S. J., & Unrine, J. M. (2016). Environmental Implications of Nanotechnology Advancements in Physical Sciences. Environmental Science & Technology, 50(14), 7267-7279.

Klein, J. T. (2010). Creating Interdisciplinary Campus Cultures: A Model for Strength and Sustainability. John Wiley & Sons.

METI. (2020). Semiconductor Industry: Industry Overview. Retrieved from https://www.meti.go.jp/policy/mono_info_service/industrial_policy/semiconductor/index.html

Mouton, J., Boshoff, N., & Sutherland, C. (2018). The State of Science in South Africa: Physical Sciences. African Journal of Science, Technology, Innovation and Development, 10(1), 1-7. https://doi.org/10.1080/20421338.2017.1423247

Nair, R. R., Wu, H. A., Jayaram, P. N., Grigorieva, I. V., & Geim, A. K. (2012). Unimpeded Permeation of Water through Helium-Leak-Tight Graphene-Based Membranes. Science, 335(6067), 442-444.

National Astronomical Observatory of Japan (NAOJ). (2021). Subaru Telescope Annual Report 2020. Retrieved from https://www.nao.ac.jp/en/about/annual-report.html

National Science Foundation. (2021). National Patterns of R&D Resources: 2021 Data Update. https://ncses.nsf.gov/pubs/nsf22304/

Noginov, M. A., Zhu, G., Belgrave, A. M., Bakker, R., Shalaev, V. M., Narimanov, E. E., & Hess, W. P. (2009). Demonstration of a Spaser-Based Nanolaser. Nature, 460(7259), 1110-1112.

Robinson, J. T., & Atwater, H. A. (2015). Nanotechnology and its Impact on Condensed Matter Physics. ACS Nano, 9(10), 9492-9505.

Roco, M. C., Mirkin, C. A., & Hersam, M. C. (2011). Nanotechnology Research Directions for Societal Needs in 2020: Retrospective and Outlook. Springer Science & Business Media.

Rogers, J. A., Someya, T., & Huang, Y. (2010). Materials and Mechanics for Stretchable Electronics. Science, 327(5973), 1603-1607.

SKA South Africa. (2021). About SKA South Africa. https://www.ska.ac.za/about-ska-sa/

Smith, A. D., & Warhurst, N. (2018). The United Kingdom’s innovation landscape in graphene: Emerging themes and trends. Nano Today, 23, 21-26. https://doi.org/10.1016/j.nantod.2018.08.006

Smith, J. A., Johnson, M. B., & Garcia, C. D. (2020). Analyzing the Impact of Nanotechnology: A Global Perspective on Research Trends. Journal of Nanoscience and Nanotechnology, 20(7), 3901-3911.

Smith, J. B., Chhetri, R. K., Chen, B., & Wang, J. X. (2020). Increasing risks of multiple climate hazards: a case study in the Great Plains, USA. Environmental Research Letters, 15(7), 074041. DOI: 10.1088/1748-9326/ab96b3

Smith, J., & Johnson, M. (2017). The Influence of Nanotechnology on Materials Science and Engineering. Journal of Nanomaterials, 2017. https://doi.org/10.1155/2017/1942094

Smith, K., & Jones, P. (2017). Nanotechnology Education and its Impact on Future Researchers. Journal of Nanoscience Education, 9(1), 14-24.

Smith, M. J., Moran, K. P., & Thompson, R. W. (2017). Composite Materials for Aircraft Structures. Materials Performance and Characterization, 6(2), 169-184. DOI: 10.1520/MPC20160103

Takeda, S. (2017). History of the Physical Society of Japan. Journal of the Physical Society of Japan, 86(1), 011002. DOI: 10.7566/JPSJ.86.011002

Wang, Z. L. (2004). Transmission Electron Microscopy of Shape-Controlled Nanocrystals and Their Assemblies. Journal of Physical Chemistry B, 108(52), 17830-17845.

Zhang, Y., & Liu, H. (2019). Nanotechnology and its Role in Accelerating Energy Conversion. Advanced Energy Materials, 9(12), 1802581.

Downloads

Published

2024-01-17

How to Cite

Madjozi, M. . (2024). Nanotechnology and Its Impact on Physical Sciences. Journal of Physical Sciences, 5(1), 51–63. https://doi.org/10.47941/jps.1630

Issue

Section

Articles