TY - JOUR
T1 - X-Functionality–Driven Photocatalytic Hydrogen Evolution in 2D 4-X-PEA2SnI4 Perovskites
AU - Kim, Taeyeon
AU - Seo, Gayoung
AU - Park, Seong Yeon
AU - Jang, Juwon
AU - Ahn, Yunho
AU - Jain, Samiksha Mukesh
AU - Adhikari, Samrat Das
AU - Correa-Leiva, Harumi
AU - Utreras-Asenjo, Ignacio
AU - Douglas-Gallardo, Oscar A.
AU - Pareja-Rivera, Carina
AU - Cho, Kayoung
AU - Kim, Byeongsung
AU - Rodriguez-Pereira, Jhonatan
AU - Choi, Eunseo
AU - Park, Jae Hong
AU - Bang, Jin Ho
AU - Jara-Quinteros, Danilo H.
AU - Giménez, Sixto
AU - Yoon, Seog Joon
AU - Gualdrón-Reyes, Andrés F.
AU - Mora-Seró, Iván
N1 - Publisher Copyright:
© 2026 The Author(s). Advanced Functional Materials published by Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Two-dimensional (2D) Sn-halide perovskites (Sn-HPs) have emerged as promising candidates for efficient optoelectronic devices, owing to their suitable charge carrier mobility and tunable optical properties achievable via chemical composition. These characteristics make them ideal for extending their application to aqueous solar-driven photocatalysis; however, the oxidation of Sn2+ hinders their use in chemical reactions, making the stabilization of Sn2+ a big challenge. Here, we demonstrate a novel synthetic procedure for growing water-stable, red-emitting 2D Sn-HPs microcrystals and their use as raw materials for H2 evolution. By introducing 4-X-phenethylammonium (PEA) cation derivatives (X = fluorine, F; methoxy, MeO; and their combination), Sn-HPs show a modulable band structure for carrying out hydrogen evolution reaction, achieving a maximum evolved H2 of 19.3 µmol·g−1, a H2 evolution rate of 6.98 µmol·g−1·h−1, maintaining their structural integrity over four On light cycles during HI splitting. The presence of organic functionalities in the para (p)-position of the PEA cation restrains the [SnI6]4− octahedra distortion, while the presence of I− prevents the rapid iodide consumption in the perovskite. This synergy enhances both the stability in aqueous solutions and electron accumulation, thus favoring the photocatalytic H2 generation.
AB - Two-dimensional (2D) Sn-halide perovskites (Sn-HPs) have emerged as promising candidates for efficient optoelectronic devices, owing to their suitable charge carrier mobility and tunable optical properties achievable via chemical composition. These characteristics make them ideal for extending their application to aqueous solar-driven photocatalysis; however, the oxidation of Sn2+ hinders their use in chemical reactions, making the stabilization of Sn2+ a big challenge. Here, we demonstrate a novel synthetic procedure for growing water-stable, red-emitting 2D Sn-HPs microcrystals and their use as raw materials for H2 evolution. By introducing 4-X-phenethylammonium (PEA) cation derivatives (X = fluorine, F; methoxy, MeO; and their combination), Sn-HPs show a modulable band structure for carrying out hydrogen evolution reaction, achieving a maximum evolved H2 of 19.3 µmol·g−1, a H2 evolution rate of 6.98 µmol·g−1·h−1, maintaining their structural integrity over four On light cycles during HI splitting. The presence of organic functionalities in the para (p)-position of the PEA cation restrains the [SnI6]4− octahedra distortion, while the presence of I− prevents the rapid iodide consumption in the perovskite. This synergy enhances both the stability in aqueous solutions and electron accumulation, thus favoring the photocatalytic H2 generation.
UR - https://www.scopus.com/pages/publications/105035223942
U2 - 10.1002/adfm.75269
DO - 10.1002/adfm.75269
M3 - Article
AN - SCOPUS:105035223942
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -