Post‐Treated Self‐Assembled Monolayer‐Driven Low‐Noise Self‐Powered Organic Photonic Conversion Devices

Combining energy harvesting and photodetection within a single organic device enables self‐powered sensing platforms to be built around integrated photodetector (PD) photovoltaics. The hole transport layer (HTL) of these devices governs the charge extraction dynamics that determine their performance. [2‐(9H‐carbazol‐9‐yl)ethyl]phosphonic acid (2PACz), a widely used self‐assembled monolayer HTL offering a modified work function (WF) and simple solution processing, forms surface aggregates during deposition that degrade the interfacial uniformity and raise the trap density at the hole‐extracting contact. To address this limitation, a posttreatment with 2‐chloronicotinic acid (INA) is applied to the 2PACz interface. INA reduces the surface aggregates and restores the interfacial uniformity while preserving the established ability of 2PACz to modify the WF. A PM6:L8‐BO‐based device using a treated interface delivers power conversion efficiencies of 16.7% under 1‐sun (AM 1.5 G) and 29.8% under 1000 lx illumination (2700 K LED) in the PV mode. In self‐powered PD mode, the treated device exhibits low noise current of 9.19 fA and a directly measured noise equivalent power of 40.4 fW (device area = 0.1 cm 2 , bandwidth = 1 Hz), corresponding to a specific detectivity of 7.81 × 10 12 cm·Hz 1/2 ·W −1 and a linear dynamic range of 147.7 dB.

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Publication Details

Journal
Solar RRL
Published
2026-09-21
DOI
https://doi.org/10.1002/solr.70487
Primary Topic
Organic Electronics and Photovoltaics
Type
article
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article

Post‐Treated Self‐Assembled Monolayer‐Driven Low‐Noise Self‐Powered Organic Photonic Conversion Devices

Ohhyun Kwon, Seungmin Yoo, Hyungju Ahn, Jae Won Shim
Solar RRL
Organic Electronics and Photovoltaics
article

Post‐Treated Self‐Assembled Monolayer‐Driven Low‐Noise Self‐Powered Organic Photonic Conversion Devices

Ohhyun Kwon, Seungmin Yoo, Hyungju Ahn, Jae Won Shim
article en

Abstract

Combining energy harvesting and photodetection within a single organic device enables self‐powered sensing platforms to be built around integrated photodetector (PD) photovoltaics. The hole transport layer (HTL) of these devices governs the charge extraction dynamics that determine their performance. [2‐(9H‐carbazol‐9‐yl)ethyl]phosphonic acid (2PACz), a widely used self‐assembled monolayer HTL offering a modified work function (WF) and simple solution processing, forms surface aggregates during deposition that degrade the interfacial uniformity and raise the trap density at the hole‐extracting contact. To address this limitation, a posttreatment with 2‐chloronicotinic acid (INA) is applied to the 2PACz interface. INA reduces the surface aggregates and restores the interfacial uniformity while preserving the established ability of 2PACz to modify the WF. A PM6:L8‐BO‐based device using a treated interface delivers power conversion efficiencies of 16.7% under 1‐sun (AM 1.5 G) and 29.8% under 1000 lx illumination (2700 K LED) in the PV mode. In self‐powered PD mode, the treated device exhibits low noise current of 9.19 fA and a directly measured noise equivalent power of 40.4 fW (device area = 0.1 cm 2 , bandwidth = 1 Hz), corresponding to a specific detectivity of 7.81 × 10 12 cm·Hz 1/2 ·W −1 and a linear dynamic range of 147.7 dB.

Solar RRLVol. 10(18)
Pohang University of Science and Technology (KR), Korea University (KR), Pohang TechnoPark (South Korea) (KR)
Affordable and clean energy
Openalex Percentile: Top 20%
Organic Electronics and Photovoltaics
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