Towards HalalTech: A Conceptual Framework for Ethical and Sustainable Manufacturing Systems

Authors

DOI:

https://doi.org/10.55826/halaltech.v1i2.7

Keywords:

HalalTech Innovation, RenewaHalalTech, Renewable Energy, Green HalalTech

Abstract

HalalTech-based renewable energy innovation constitutes an emerging paradigm that integrates Islamic ethical principles with advanced technological developments to foster sustainable, clean, and socially responsible energy systems. Although the term HalalTech has not yet been widely established in the scientific literature, its underlying principles—ethical stewardship, environmental preservation, and responsible innovation—are highly consistent with the objectives of renewable energy development. In this context, technologies such as solar photovoltaics, advanced materials, and nanotechnology play a pivotal role in facilitating the transition toward low-carbon, energy-efficient, and resource-conscious systems. This study employs a qualitative literature review combined with comparative analysis to examine recent advances in renewable energy technologies, green finance, and sustainable additive manufacturing. Secondary data derived from peer-reviewed publications published between 2021 and 2025 were synthesized to formulate a conceptual framework for HalalTech-based renewable energy innovation. The analysis particularly emphasizes the extent to which these technological developments correspond with HalalTech principles in terms of environmental sustainability, ethical production processes, and efficient resource utilization. The findings suggest that renewable energy innovations significantly improve energy efficiency and reduce carbon emissions. Furthermore, advanced materials and nanotechnology enhance the performance and sustainability of energy systems, while sustainable additive manufacturing supports efficient, low-waste production practices. Green finance mechanisms also play an essential role in enabling the development and diffusion of environmentally responsible technologies. Despite persistent challenges, including high technological costs, limited infrastructure, and the absence of standardized frameworks, HalalTech demonstrates considerable potential as a multidisciplinary framework for advancing sustainable energy transitions and supporting global decarbonization efforts.

References

[1] Astuti, T., & Ahmar, N. (2025). Effects of green intellectual capital, green accounting, and green innovation on firm value: The moderating role of return on assets. Environmental Economics, 16(1), 1–12. https://doi.org/10.21511/ee.16(1).2025.01

[2] Barendse, J., Roux, D., Currie, B., Wilson, N., & Fabricius, C. (2016). broader view of stewardship to achieve conservation and sustainability goals in South Africa. South African Journal of Science, 112(5/6), 15. https://doi.org/10.17159/sajs.2016/20150359

[3] Baroutaji, A., Arjunan, A., Robinson, J., Abdelkareem, M. A., & Olabi, A.-G. (2023). Additive manufacturing for Proton Exchange Membrane (PEM) hydrogen technologies: merits, challenges, and prospects. International Journal of Hydrogen Energy, 52, 561–584. https://doi.org/10.1016/j.ijhydene.2023.07.033

[4] Blankinship, L. A., Gillaspie, S., & Aboul-Enein, B. H. (2024). Highlighting the importance of biodiversity conservation through the Holy Qur’an. Conservation Biology : The Journal of the Society for Conservation Biology, 39(1). https://doi.org/10.1111/cobi.14309

[5] Bratton, S. (2018). Eco-Dimensionality as a Religious Foundation for Sustainability. Sustainability, 10(4), 1021. https://doi.org/10.3390/su10041021

[6] Chu, W., Vicidomini, M., Calise, F., Duić, N., Østergaard, P. A., Wang, Q., & Da Graça Carvalho, M. (2023). Review of Hot Topics in the Sustainable Development of Energy, Water, and Environment Systems Conference in 2022. Energies, 16(23), 7897. https://doi.org/10.3390/en16237897

[7] Dipta, S. D., Rahman, M. M., Ansari, M. J., & Uddin, M. N. (2025). A Comprehensive Review of Sustainable and Green Additive Manufacturing: Technologies, Practices, and Future Directions. Journal of Manufacturing and Materials Processing, 9(8), 269. https://doi.org/10.3390/jmmp9080269

[8] Eskandari Sabzi, H., & Rivera-Díaz-Del-Castillo, P. E. J. (2023). Sustainable Powder-Based Additive Manufacturing Technology. Sustainability, 15(20), 15081. https://doi.org/10.3390/su152015081

[9] Eyers, D. (2017). Control architectures for Industrial Additive Manufacturing Systems. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 232(10), 1767–1777. https://doi.org/10.1177/0954405417703420

[10] Firoozi, A. A., Firoozi, A. A., & Hejazi, F. (2024). Innovations in Wind Turbine Blade Engineering: Exploring Materials, Sustainability, and Market Dynamics. Sustainability, 16(19), 8564. https://doi.org/10.3390/su16198564

[11] Gulzar, A., Islam, T., Khan, M. A., & Haq, S. M. (2021). Environmental Ethics towards Sustainable Development in Islamic perspective. Ethnobotany Research and Applications, 22. https://doi.org/10.32859/era.22.39.1-10

[12] Gupta, P., Toksha, B., & Rahaman, M. (2023). A Critical Review on Hydrogen Based Fuel Cell Technology and Applications. The Chemical Record, 24(1). https://doi.org/10.1002/tcr.202300295

[13] Huo, Z., Wu, C. H., Zhu, Z., & Zhao, Y. (2015). Advanced Materials and Nanotechnology for Sustainable Energy Development. Journal of Nanotechnology, 2015, 1. https://doi.org/10.1155/2015/302149

[14] Junus, M., Putra, I. L., Mustaini, A., Wijayanto, N., & Maulana, N. (2026). Optimasi Konversi Energi Potensi Biodegradable Waste. Jurnal Abdi Masyarakat Nusantara, 4(1), 10-21.

[15] Jorgensen, B., Krasny, M., & Baztan, J. (2020). Volunteer beach cleanups: civic environmental stewardship combating global plastic pollution. Sustainability Science, 16(1), 153–167. https://doi.org/10.1007/s11625-020-00841-7

[16] Kamal, M. A., Warsi, T. R., & Nasir, O. (2023). Islamic Principles As A Design Framework For Urban System: Environmental Concern And Sustainable Development. Journal of Islamic Architecture, 7(4), 699–712. https://doi.org/10.18860/jia.v7i4.21187

[17] Kava, H., Spanaki, K., Papadopoulos, T., Despoudi, S., Rodriguez-Espindola, O., & Fakhimi, M. (2021). Data analytics diffusion in the UK renewable energy sector: an innovation perspective. Annals of Operations Research, 333(2–3), 717–742. https://doi.org/10.1007/s10479-021-04263-1

[18] Lukmana Putra, I. . (2024). Al-Ghazali Dalam Keperilakuan Manajemen Keuangan. Edusifa: Jurnal Pendidikan Islam, 9(4). https://doi.org/10.56146/edusifa.v9i4.207

[19] Liu, Y.-Z., Lu, W.-M., Tran, P. P., & Pham, T. A. K. (2024). Sustainable Energy and Semiconductors: A Bibliometric Investigation. Sustainability, 16(15), 6548. https://doi.org/10.3390/su16156548

[20] May, G., & Psarommatis, F. (2023). Maximizing Energy Efficiency in Additive Manufacturing: A Review and Framework for Future Research. Energies, 16(10), 4179. https://doi.org/10.3390/en16104179

[21] Meraj, M. A. (2016). Islamic Approach To The Environment And The Role’s In The Environment Protected. Jurnal Ilmiah Peuradeun, 4(1), 1. https://doi.org/10.26811/peuradeun.v4i1.81

[22] Nepal, R., Liu, Y., Wang, J., & Dong, K. (2024). How does green finance promote renewable energy technology innovation? A quasi-natural experiment perspective. Energy Economics, 134, 107576. https://doi.org/10.1016/j.eneco.2024.107576

[23] Putra, I. L. (2024). Manajemen aset. CV. Dewa Publishing.

[24] Putra, I. L., Martaleni, M., Candrawati, T., Puspitasari, P., & Rachma, H. (2025). Halal Tourism: Enhancing Muslim Travel Experience Bridging Faith And Travel (Sustainable, Smart And Muslim-Friendly Malang Tourism Destinations). Jurnal Pariwisata Tawangmangu, 3(3), 141-150.Rahim, A., Agarwal, S., Gupta, G., Singh, R., & Malik, P. K. (2025). Efficient Use of Renewable Solar Energy Resource for Electric Vehicles: Opportunities and Challenges. Engineering Reports, 7(2). https://doi.org/10.1002/eng2.70007

[25] Raja, S., Ali, R. M., Karthikeyan, S., Surakasi, R., Anand, R., Devarasu, N., & T, S. (2024). Energy-efficient FDM printing of sustainable polymers: Optimization strategies for material and process performance. Applied Chemical Engineering, 7(3). https://doi.org/10.59429/ace.v7i3.5537

[26] Raman, R., Gunasekar, S., Kaliyaperumal, D., & Nedungadi, P. (2024). Navigating the Nexus of Artificial Intelligence and Renewable Energy for the Advancement of Sustainable Development Goals. Sustainability, 16(21), 9144. https://doi.org/10.3390/su16219144

[27] Rodriguez Delgadillo, R., Medini, K., & Wuest, T. (2022). A DMAIC Framework to Improve Quality and Sustainability in Additive Manufacturing—A Case Study. Sustainability, 14(1), 581. https://doi.org/10.3390/su14010581

[28] Saharudin, M. S., Ullah, A., & Younas, M. (2025). Innovative and Sustainable Advances in Polymer Composites for Additive Manufacturing: Processing, Microstructure, and Mechanical Properties. Journal of Manufacturing and Materials Processing, 9(2), 51. https://doi.org/10.3390/jmmp9020051

[29] Sun, H., Yan, Y., & Han, Y. (2024). The influencing factors of green technology innovation in renewable energy companies based on hyper-network. Energy Informatics, 7(1). https://doi.org/10.1186/s42162-024-00361-z

[30] Tarancón, A., Esposito, V., Torrell, M., Di Vece, M., Son, J. S., Norby, P., Bag, S., Grant, P. S., Vogelpoth, A., Linnenbrink, S., Brucki, M., Schopphoven, T., Gasser, A., Persembe, E., Koufou, D., Kuhn, S., Ameloot, R., Hou, X., Engelbrecht, K., … Pedersen, D. B. (2022). 2022 roadmap on 3D printing for energy. Journal of Physics: Energy, 4(1), 011501. https://doi.org/10.1088/2515-7655/ac483d

[31] Vijayan, D. S., Koda, E., Sivasuriyan, A., Winkler, J., Devarajan, P., Kumar, R. S., Jakimiuk, A., Osinski, P., Podlasek, A., & Vaverková, M. D. (2023). Advancements in Solar Panel Technology in Civil Engineering for Revolutionizing Renewable Energy Solutions—A Review. Energies, 16(18), 6579. https://doi.org/10.3390/en16186579

[32] Widhiyanti, S., & Putra, I. L. (2025). Menilai Efektivitas Pembelajaran Akuntansi Berbasis AI dari Perspektif Mahasiswa. Gorontalo Accounting Journal, 8(2), 460–472. https://doi.org/10.32662/gaj.v8i2.4554

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Published

2026-05-04

How to Cite

Towards HalalTech: A Conceptual Framework for Ethical and Sustainable Manufacturing Systems. (2026). HalalTech: Innovation, Industry, and Sustainability, 1(2), 44-52. https://doi.org/10.55826/halaltech.v1i2.7

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