Nithesh Kumar Krishnan, Esakkimuthu Shanmugasundaram, Harini Bhagyaraj, Kannan Vellaisamy, Amos Ravi, As’ad Ibrahim, Na’il Saleh, Stalin Thambusamy
High Resolution Image Download MS PowerPoint Slide The rapid evolution of energy storage technologies demands electrode materials that deliver a high energy density, flexibility, and long-term stability. In this work, a binder-free, flexible supercapacitor electrode was fabricated via electro-polymerization of polyaniline (PANI) doped with Fe ions and carbon quantum dots (CQD). The novelty of this study lies in the first-time use of biomass-derived CQDs from Borassus flabellifer, which exhibit a strong natural affinity toward Fe 3+ ions, enabling uniform incorporation into the PANI matrix during electro-polymerization. This unique design integrates three complementary charge-storage mechanisms by high conductivity from the PANI backbone, reversible Fe 3+ redox activity, and EDLC-type capacitance from the CQD, along with their role as conductive spacers to stabilize Fe 3+ redox centers and prevent polymer aggregation. Owing to this synergy, the PANI-Fe-CQD polymerized on the CC electrode achieved a high areal capacitance of 1212.5 mF/cm 2 at 1 mA/cm 2 with 86.9% retention after 5000 cycles, while an asymmetric device (AC//PVA-H 2 SO 4 //PANI-Fe-CQD) delivered an energy density of 53.25 μWh/cm 2 at a power density of 0.9 mW/cm 2 and retained 91.2% capacitance after 5000 cycles. This work possesses a novel strategy of integrating biomass-derived B. flabellifer CQDs, not only replacing the need for binders and conductive agents but also enhancing the electrochemical performance of flexible electrodes, offering new directions for sustainable, high-performance energy storage devices.