Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/49952
Title: Annealing-free sputtered NiO hole transport layers for large-area perovskite solar modules
Authors: SUBRAMANIAM, Sownder 
MERCKX, Tamara 
AGUIRRE, Aranzazu 
KRISHNA, Anurag 
Pintor-Monroy, Maria Isabel
TUTUNDZIC, Merve 
Singh, Dhirendra Pratap
Conard, Thierry
Gehlhaar, Robert
AERNOUTS, Tom 
KUANG, Yinghuan 
POORTMANS, Jef 
Genoe , Jan
Issue Date: 2026
Publisher: ELSEVIER
Source: Solar Energy Materials and Solar Cells, 307 (Art N° 114639)
Abstract: Nickel-oxide (NiO) is a widely adopted inorganic hole transport layer (HTL) for inverted (p-i-n) perovskite solar cells (PSCs). Its deposition by magnetron sputtering is particularly attractive for industrial deployment due to its uniformity, throughput, and large-area compatibility. Conventional sputtered NiOx typically requires post-deposition annealing (similar to 300( degrees)C) to achieve suitable HTL characteristics. Such annealing imposes severe constraints on large-area glass, flexible substrates, and tandem device stacks, and exacerbates reliability issues like alkali migration from soda-lime glass. Here, we demonstrate an annealing-free, large-area processed NiO, sputtered from a stoichiometric NiO target. Our process delivers HTL properties comparable to, or exceeding, those of conventionally annealed NiOx. Through a combined analysis of optical spectroscopy, ellipsometry, XPS/UPS, and transmission line measurements, we achieve high transparency, favorable energetics (Phi = 4.25 eV, reduced EF-EV), and tuneable p-type transport governed by controlled oxygen supply. Inverted PSCs employing such NiOx reach efficiencies of similar to 18% without any thermal treatment, matching annealed counterparts. With the inclusion of a self-assembled monolayer and passivation layers, the devices produce 22.5% efficiency. Crucially, we demonstrate process transfer to mini-(4 cm(2)) and large-area (781 cm(2)) modules, yielding comparable performance to annealed NiOx. Our mini-and large-area modules show efficiencies of 19.6% and 14.6% respectively.
Notes: Subramaniam, S; Kuang, YH (corresponding author), IUMAT, Imec, Thor Pk 8320, B-3600 Genk, Belgium.
sownder.subramaniam@imec.be; yinghuan.kuang@imec.be
Document URI: http://hdl.handle.net/1942/49952
ISSN: 0927-0248
e-ISSN: 1879-3398
DOI: 10.1016/j.solmat.2026.114639
ISI #: 001850935800001
Rights: 2026 Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
Category: A1
Type: Journal Contribution
Appears in Collections:Research publications

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