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Blockchain-Enabled IoT Architectures for Secure Smart Cities

DOI: 10.4236/oalib.1114695, PP. 1-16

Subject Areas: Computer and Network Security

Keywords: Blockchain-IoT integration, IoT Security, Smart City Infrastructures

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Abstract

The rapid digitalization of urban environments has accelerated the adoption of smart city systems, with the Internet of Things (IoT) serving as a core enabler of real-time monitoring, automation, and data-driven services. Despite its advantages, IoT-based smart city infrastructure faces critical security and reliability challenges, including data breaches, device tampering, unauthorized access, and limited computational protection. These vulnerabilities compromise the robustness, trustworthiness, and sustainability of smart city deployments, underscoring the necessity for secure and decentralized system architectures. This study explores the integration of Blockchain and IoT as a transformative pathway toward secure and reliable smart city systems. Through a focused literature review, case analysis, and conceptual modeling, we demonstrate that Blockchain enhances IoT security by enabling distributed trust, token-based authentication, and resilient data integrity while reducing single points of failure. Although challenges related to scalability, energy consumption, interoperability, and regulation persist, the lightweight consensus mechanisms and AI-assisted frameworks continue to further improve system efficiency and scalability, and Blockchain-IoT integration offers a promising foundation for next-generation secure smart city infrastructure.

Cite this paper

Sakala, A. A. , Chen, Y. , Nkunika, P. and Zhang, M. (2026). Blockchain-Enabled IoT Architectures for Secure Smart Cities. Open Access Library Journal, 13, e14695. doi: http://dx.doi.org/10.4236/oalib.1114695.

References

[1]  Finck, M. (2019) Blockchain and the General Data Protection Regulation: Can Distributed Ledgers Be Squared with Euro-pean Data Protection Law? European Parliament, Scientific Foresight Unit (STOA).
[2]  Brachuk, A. (2018) The Interna-tional Standards of Single Window System for the Foreign Trade. Lex portus, 1, 93-104. https://doi.org/10.26886/2524-101x.1.2018.7
[3]  Morris, K. (2019) Blockchain in Trade Finance and Supply Chain. EU Blockchain Observatory and Forum.
[4]  Allen, D.W.E., Berg, C., Davidson, S., Novak, M. and Potts, J. (2019) International Policy Coordination for Blockchain Supply Chains. Asia & the Pacific Policy Studies, 6, 367-380. https://doi.org/10.1002/app5.281
[5]  Dorri, A., Kanhere, S.S., Jurdak, R. and Gauravaram, P. (2017) Blockchain for IoT Security and Privacy: The Case Study of a Smart Home. 2017 IEEE International Conference on Pervasive Computing and Communications Workshops (PerCom Workshops), Kona, 13-17 March 2017, 618-623.
[6]  Xu, X., Weber, I. and Staples, M. (2021) Architecture for Blockchain Applications. Springer.
[7]  Roman, R., Zhou, J. and Lopez, J. (2013) On the Fea-tures and Challenges of Security and Privacy in Distributed Internet of Things. Computer Networks, 57, 2266-2279. https://doi.org/10.1016/j.comnet.2012.12.018
[8]  Harzing, A. and Alakangas, S. (2015) Google Scholar, Scopus and the Web of Science: A Longitudinal and Cross-Disciplinary Comparison. Scientometrics, 106, 787-804. https://doi.org/10.1007/s11192-015-1798-9
[9]  Crosby, M., et al. (2016) Blockchain technology: Beyond Bitcoin. Ap-plied Innovation Review, No. 2, 6-19.
[10]  Alzoubi, Y.I., et al. (2025) Blockchain for Sustainable Smart Cities: Motivations and Challenges. Digital.
[11]  Ali, A., et al. (2025) Decentralized Trust Framework for Smart Cities: A Block-Chain-Enabled Cybersecurity and Data Integrity Model. Scientific Reports, 15, Article No. 23454.
[12]  Zanella, A., Bui, N. and Castellani, A. (2019) Smart City Solutions Using IoT. IEEE Internet of Things Journal, 1, 22-32.
[13]  Elhajj, M., Attar, A.E. and Mikati, A. (2025) Integrating IoT and Blockchain for Smart Urban Energy Management: Enhancing Sustainability through Real-Time Monitoring and Optimization. Cluster Computing, 28, Article No. 960. https://doi.org/10.1007/s10586-025-05677-3
[14]  Atzori, L., Iera, A. and Morabito, G. (2010) The Internet of Things: A Survey. Computer Networks, 54, 2787-2805. https://doi.org/10.1016/j.comnet.2010.05.010
[15]  Upperton, T., Epps, T. and Carey, B. (2019) Revolutionizing Global Supply Chains One Block at a Time: Growing International Trade with Block-chain: Are International Rules up to the Task? Global Trade and Customs Journal, 14, 136-145. https://doi.org/10.54648/gtcj2019013
[16]  Berryhill, J. and Hanson, A. (2018) Blockchains Unchained: Blockchain Technology and its use in the Public Sector. OECD Working Papers on Public Governance, No. 28.
[17]  Bughin, J., LaBerge, L. and Mellbye, A. (2018) The Case for Digital Reinvention. McKinsey Quarterly.
[18]  álvarez-García, J., del Río-Rama, M., de la, C. and Durán-Sánchez, A. (2018) Sustainable Smart Cities in the Scientific Literature: A Bibliometric Analysis. Sus-tainability, 10, Article 3896.
[19]  Koseoglu, M.A., Rahimi, R., Okumus, F. and Liu, J. (2016) Bibliometric Studies in Tour-ism. Annals of Tourism Research, 61, 180-198. https://doi.org/10.1016/j.annals.2016.10.006
[20]  Brzezinski, M. (2015) Power Laws in Citation Distributions: Evidence from Scopus. Scientometrics, 103, 213-228. https://doi.org/10.1007/s11192-014-1524-z
[21]  Rejeb, A., Rejeb, K., Simske, S.J. and Keogh, J.G. (2021) Blockchain Technology in the Smart City: A Bibliometric Review. Quality & Quantity, 56, 2875-2906. https://doi.org/10.1007/s11135-021-01251-2

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