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arXiv · 2507.17028

Pioneering Advancements of 2D Graphene: Energy and Electronics applications

Abstract

This review explores the synthesis, characterization, and potential applications of graphene, a two-dimensional material with exceptional properties. Graphene's versatility in energy and electronics applications is highlighted, with its high conductivity and huge surface area facilitating improved energy storage capabilities in supercapacitors and batteries. In electronics, graphene is revolutionizing the industry by enabling the development of flexible displays, high-speed transistors, and enhanced thermal management systems. The integration of graphene into composite materials presents opportunities for stronger, lighter, and more conductive materials. The study provides a comprehensive overview of graphene's current and future impact on technology, emphasizing its transformative potential in energy solutions and electronic advancements. In the energy sector, graphene's integration into batteries, energy storage systems, capacitors, fuel cells, and renewable energy technologies signifies a leap forward in efficiency, capacity, and sustainability. In the electronics sector, graphene's unique characteristics are utilized in RFID, sensors, and EMI shielding, leading to communication, security, and device miniaturization advancements. The study underscores graphene's potential to spearhead future innovations, reinforcing its status as a pivotal material in the ongoing technological evolution.

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Abdulrhman M. Alaraj, Aya A. Esmaeil, Mohamed A. Khamis, Naglaa M. Zian, Fatma Sameh, Abdallah M. Abdeldaiem, Ebrahem H. Abdelaal, Walid J. Hamouda, Sara R. Ghazal, Habiba E. El-Sayegh, Aml F. Dawood, Fayza R. Ramadan, Haneen A. Saad, Mena K. Selema, Nora H. El-Mowafy, Mohamed M. Kedra, Ahmed K. Abozaid, Ahmed M. Ragab, Ahmed A. El-Naggar, Walid Ismail, Swellam W. Sharshir, Abdelhamid El-Shaer, Mahmoud Abdelfatah. 2025-07-22. Pioneering Advancements of 2D Graphene: Energy and Electronics applications. https://arxiv.org/abs/2507.17028

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