Published January 2025 | Version v1
Journal article

In-depth dielectric study of bulk nanocrystalline β-H2Pc with different biasing and photovoltaic performance of β-H2Pc/p-Si solar cell under varied illumination

  • 1. Thin Film Laboratory, Physics Department, Faculty of Education, Ain Shams University, Roxy, Cairo 11757 (Egypt)
  • 2. Electronic Materials Department, Advanced Technology and New Materials Institute, City of Scientific Research and Technological Applications (SRTA-City), New Borg El Arab City 21934, Alexandria (Egypt)

Description

This study offers a comprehensive analysis of the thermal stability of β-metal-free phthalocyanine (β-H2Pc) powder, demonstrating its resilience at temperatures of approximately 470°C. The nanocrystalline nature of β-H2 Pc was confirmed using scanning electron microscopy, particle size analysis, and atomic force microscopy. Furthermore, an extensive exploration of the dielectric properties of bulk β-H2 Pc, in the form of compacted pellets, was undertaken over a wide frequency range (10 Hz–20 MHz) at different temperatures (303, 348, and 423 K), with consideration of the impact of DC-bias voltages (- 2 V to 2 V). Interestingly, the examined dielectric characteristics exhibited a substantial dependency on bias voltage, frequency, and temperature. The series resistance diminishes with increasing temperature, indicating enhanced device performance under elevated thermal conditions. In addition, this study delved into the photovoltaic characteristics of the β-H2 Pc/p-Si diode under various illumination levels and was used to evaluate its potential for optoelectronic applications. The observed current density–voltage behavior demonstrates diode-like properties, with the generated current showing evidence of thermal activation. Furthermore, the Fill Factor decreased with increasing illumination intensity and power. (author)

Additional details

Identifiers

Publishing Information

Journal Title
Indian Journal of Physics (Online)
Journal Volume
99
Journal Issue
1
Journal Page Range
p. 129-143
ISSN
0974-9845