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Flexible Asymmetric Photo-Microsupercapacitor Based on Pseudobrookite-Type Iron Titanate and V2CTX MXene for
Yahya Sorkhe1, Pegah Bavafa1, Bora Derin1
1Metallurgical and Materials Engineering Department, Istanbul Technical University, Istanbul, Turkey.
Abstract:
The integration of solar energy harvesting with electrochemical storage represents a promising strategy for next-generation microsystems. Here, we report a flexible asymmetric photo-microsupercapacitor (photo-MSC) based on pseudobrookite-type iron titanate (FeTi2O5) and V2CTx MXene electrodes fabricated on PET substrates. Iron titanate was synthesized from ilmenite via a sustainable route with a potential acid recovery system, yielding defect-rich nanopowder with a direct band gap of ∼2.31 eV and sub-bandgap states that enhance visible-light absorption. The asymmetric configuration leverages complementary charge storage mechanisms using diffusion-controlled pseudocapacitance in iron titanate and fast surface-capacitive behavior in MXene, delivering an areal capacitance of 78.99-361.67 mF cm-2. Under simulated solar illumination, capacitance increases by 45.8% at 50 mV s-1, with an energy density rising from 64.36 to 93.93 µWh cm-2 and power density from 5.80 to 8.45 mW cm-2. This photo-enhancement originates from efficient photogenerated carrier separation at the iron titanate/MXene heterojunction, confirmed by reduced charge-transfer resistance and improved carrier dynamics under illumination. The device further demonstrates excellent mechanical flexibility (∼92% capacitance retention at 180° bending) and practical energy delivery capability. This work establishes pseudobrookite iron titanate as a sustainable photoactive electrode material for integrated solar energy storage microsystems.

