Electrolyte-Induced Band Bending and Barrier Tuning to Enhance Photodetection in Inkjet-Printed Organic–Inorganic Heterojunctions

Abstract Hybrid organic–inorganic heterojunctions have attracted considerable interest in optoelectronic applications, as they combine the excellent electronic transport of inorganic semiconductors with the ease of processing and tunability of organic conductors. While the performance of such heterojunctions is strongly governed by their built-in electric field and interfacial band alignment, strategies for actively tuning these parameters in printed bulk heterojunctions have remained largely unexplored. In this regard, here we show an inkjet-printed bulk heterojunction diode with semiconducting amorphous indium gallium oxide (a-IGO) and conducting poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS), whose interfacial barrier can be dynamically modulated by a solvent (dimethyl sulfoxide, DMSO) or a composite solid polymer electrolyte (CSPE). Systematic studies of pristine, DMSO-treated, and CSPE-treated devices reveal that DMSO enhances charge transport in PEDOT:PSS, while mobile ions of CSPE penetrate the polymer matrix and accumulate at the heterojunction interface. Capacitance–voltage measurements show that ionic screening increases the built-in potential from 0.36 to 0.70 eV by inducing additional band bending within a-IGO. Consequently, the off-current decreases by more than two orders of magnitude, accompanied by a substantial enhancement in rectification ratio. The strengthened junction field promotes efficient separation of photogenerated carriers under ultraviolet illumination, increasing the photosensitivity from 103 to beyond 106 while achieving a responsivity of 80 A/W, a specific detectivity of 0.25 × 1012 Jones, and an external quantum efficiency of 27200%. This elevated built-in potential further enables zero-biased ultraviolet photodetection with a photosensitivity of ∼104 and a responsivity of 45 mA/W. Furthermore, a three-terminal electrolyte-gated device can demonstrate ion-induced modulation of the interfacial barrier, enabling a transition from rectifying to near-Ohmic behavior and thereby realizing a tuneable diode. This electrolyte-assisted ionic-modulation strategy enables reconfigurable hybrid heterojunctions for next-generation, energy-efficient sensing and multifunctional optoelectronic applications.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-10-07
DOI
https://doi.org/10.1021/acsami.6c12401
Primary Topic
Organic Electronics and Photovoltaics
Type
article
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article

Electrolyte-Induced Band Bending and Barrier Tuning to Enhance Photodetection in Inkjet-Printed Organic–Inorganic Heterojunctions

Subho Dasgupta, Manvendra Singh, Mohammed Hadhi Pazhaya Puthanveettil
ACS Applied Materials & Interfaces
Organic Electronics and Photovoltaics
article

Electrolyte-Induced Band Bending and Barrier Tuning to Enhance Photodetection in Inkjet-Printed Organic–Inorganic Heterojunctions

Subho Dasgupta, Manvendra Singh, Mohammed Hadhi Pazhaya Puthanveettil
article en

Abstract

Abstract Hybrid organic–inorganic heterojunctions have attracted considerable interest in optoelectronic applications, as they combine the excellent electronic transport of inorganic semiconductors with the ease of processing and tunability of organic conductors. While the performance of such heterojunctions is strongly governed by their built-in electric field and interfacial band alignment, strategies for actively tuning these parameters in printed bulk heterojunctions have remained largely unexplored. In this regard, here we show an inkjet-printed bulk heterojunction diode with semiconducting amorphous indium gallium oxide (a-IGO) and conducting poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS), whose interfacial barrier can be dynamically modulated by a solvent (dimethyl sulfoxide, DMSO) or a composite solid polymer electrolyte (CSPE). Systematic studies of pristine, DMSO-treated, and CSPE-treated devices reveal that DMSO enhances charge transport in PEDOT:PSS, while mobile ions of CSPE penetrate the polymer matrix and accumulate at the heterojunction interface. Capacitance–voltage measurements show that ionic screening increases the built-in potential from 0.36 to 0.70 eV by inducing additional band bending within a-IGO. Consequently, the off-current decreases by more than two orders of magnitude, accompanied by a substantial enhancement in rectification ratio. The strengthened junction field promotes efficient separation of photogenerated carriers under ultraviolet illumination, increasing the photosensitivity from 103 to beyond 106 while achieving a responsivity of 80 A/W, a specific detectivity of 0.25 × 1012 Jones, and an external quantum efficiency of 27200%. This elevated built-in potential further enables zero-biased ultraviolet photodetection with a photosensitivity of ∼104 and a responsivity of 45 mA/W. Furthermore, a three-terminal electrolyte-gated device can demonstrate ion-induced modulation of the interfacial barrier, enabling a transition from rectifying to near-Ohmic behavior and thereby realizing a tuneable diode. This electrolyte-assisted ionic-modulation strategy enables reconfigurable hybrid heterojunctions for next-generation, energy-efficient sensing and multifunctional optoelectronic applications.

ACS Applied Materials & Interfaces
Indian Institute of Science Bangalore (IN)
Openalex Percentile: Top 22%
Organic Electronics and Photovoltaics
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