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Enhancing Stability in Next-Generation Photoelectrodes Such as Organic Semiconductor and Halide Perovskite-Based

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Summary

This review details methods to improve the stability of organic semiconductor and halide perovskite photoelectrodes in photoelectrochemical systems. Enhanced passivation and encapsulation are key for efficient solar energy conversion and pollutant remediation.

Keywords:
bias‐free systemencapsulationhalide perovskiteorganic semiconductorpassivationphotoelectrochemical

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Renewable Energy

Background:

  • Organic semiconductors (OS) and halide perovskites (HP) offer high performance in photoelectrochemical (PEC) devices.
  • However, their application is limited by intrinsic and extrinsic degradation under PEC conditions.

Purpose of the Study:

  • To review advancements in passivation and encapsulation for OS and HP-based photoelectrodes.
  • To highlight strategies for enhancing stability and performance in PEC systems.

Main Methods:

  • Discussion of passivation strategies to reduce photochemical reactions and defects.
  • Exploration of encapsulation techniques to prevent electrolyte corrosion.
  • Review of recent research on material stability and performance.

Main Results:

  • Passivation and encapsulation significantly improve the operational stability of OS and HP photoelectrodes.
  • These methods mitigate degradation pathways, enabling higher efficiency.
  • Advanced techniques are crucial for practical PEC applications.

Conclusions:

  • Material innovation, particularly in passivation and encapsulation, is critical for advancing PEC technology.
  • OS and HP photoelectrodes show great potential for solar-to-fuel conversion and environmental remediation.
  • Future work should focus on material design, new technologies, and scalability.