Colloidal Ink Engineering for Slot‐Die Processes to Realize Highly Efficient and Robust Perovskite Solar Modules

S Sushil Shivaji Sangale (Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea) H Hyeonsu Son (Department of Materials Engineering and Convergence Technology School of Materials Science and Engineering Gyeongsang National University (GNU) Jinju Gyeongnam 52828 Republic of Korea) S Sang Wook Park (Department of Oral Biochemistry School of Dentistry Chonnam National University Gwangju Republic of Korea) P Pramila Patil (Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Hahn‐Meitner‐Platz 1 D‐14109 Berlin Germany) T Tae Kyung Lee S Sung‐Nam Kwon (Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea) S Seok‐In Na (Department of Flexible and Printable Electronics and LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea)

Abstract

Abstract Perovskite solar cells (PSCs) have emerged as a promising alternative to silicon solar cells, but challenges remain in developing perovskite inks and processes suitable for large‐scale production. This study introduces a novel approach using colloidal inks incorporating toluene and chlorobenzene as co‐antisolvents for PSC fabrication via slot‐die process. It is found that colloidal inks that are strategically engineered can significantly improve the rheological properties of perovskite inks, leading to enhanced wettability and high‐quality film formation. The formation of large colloids such as α cubic perovskite, δ hexagonal perovskite and transition intermediate phases promotes heterogeneous nucleation and lowers activation energy for crystallization, resulting in superior crystal growth and improved film morphology. Notably, the co‐solvent enhances the FA‐PbI 3 binding energy and weakens the dimethyl sulfoxide coordination, which is more thermodynamically favorable for perovskite crystallization. This colloidal strategy yields devices with a maximum efficiency of 21.32% and remarkable long‐term stability, retaining 77% of initial efficiency over 10115 h. The study demonstrates the scalability of this approach, achieving 20.26% efficiency in lab‐scale minimodules and 19.15% in larger convergence minimodules. These findings provide an understanding of the complex relationship between ink composition, rheological properties, film quality, crystallization kinetics, and device performance.

Article Details

Volume / Issue Vol. 37, Issue 11
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

S

Sushil Shivaji Sangale

Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea

H

Hyeonsu Son

Department of Materials Engineering and Convergence Technology School of Materials Science and Engineering Gyeongsang National University (GNU) Jinju Gyeongnam 52828 Republic of Korea

S

Sang Wook Park

Department of Oral Biochemistry School of Dentistry Chonnam National University Gwangju Republic of Korea

P

Pramila Patil

Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Hahn‐Meitner‐Platz 1 D‐14109 Berlin Germany

T

Tae Kyung Lee

S

Sung‐Nam Kwon

Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea

S

Seok‐In Na

Department of Flexible and Printable Electronics and LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea