TY - JOUR
T1 - Exploiting Dimensionality in Hybrid Metal Halides
T2 - Design Strategies, Structure–Property Relationships, Optoelectronic Applications, and Future Perspectives
AU - Liu, Ying
AU - Zhao, Xingyao
AU - Ju, Hongyu
AU - Cui, Bin–Bin
N1 - Publisher Copyright:
© 2026 The Author(s). Small Structures published by Wiley-VCH GmbH.
PY - 2026/7
Y1 - 2026/7
N2 - Low-dimensional perovskite-type hybrid metal halides (HMHs) have become a research hotspot due to their excellent photoelectric properties and structural tunability. Compared with traditional three-dimensional perovskite-type HMHs, low-dimensional materials exhibit many outstanding advantages, including wide-range tunability of bandgaps, enhancement of exciton binding energy, ultrahigh photoluminescence quantum yield (PLQY), and improvement of environmental stability. However, the related research on low-dimensional HMHs still lacks systematic organization, there is no unified standard for dimension determination and design criteria, and the dimension control and performance analysis are not comprehensive and specific enough. Therefore, this article takes the connection mode of MX6 octahedra as the main line, constructs a systematic structural classification framework covering three-dimensional (3D), two-dimensional (2D), one-dimensional (1D), and zero-dimensional (0D) structures, systematically reviews dimension engineering strategies such as organic cation engineering, metal cation regulation, external field stimulation modulation, and synthesis route optimization, and extracts the structure–activity relationships dominated by dimension and corresponding application scenarios. This research aims to establish a unified conceptual framework and provide methodological guidance, to support the further development of low-dimensional HMHs.
AB - Low-dimensional perovskite-type hybrid metal halides (HMHs) have become a research hotspot due to their excellent photoelectric properties and structural tunability. Compared with traditional three-dimensional perovskite-type HMHs, low-dimensional materials exhibit many outstanding advantages, including wide-range tunability of bandgaps, enhancement of exciton binding energy, ultrahigh photoluminescence quantum yield (PLQY), and improvement of environmental stability. However, the related research on low-dimensional HMHs still lacks systematic organization, there is no unified standard for dimension determination and design criteria, and the dimension control and performance analysis are not comprehensive and specific enough. Therefore, this article takes the connection mode of MX6 octahedra as the main line, constructs a systematic structural classification framework covering three-dimensional (3D), two-dimensional (2D), one-dimensional (1D), and zero-dimensional (0D) structures, systematically reviews dimension engineering strategies such as organic cation engineering, metal cation regulation, external field stimulation modulation, and synthesis route optimization, and extracts the structure–activity relationships dominated by dimension and corresponding application scenarios. This research aims to establish a unified conceptual framework and provide methodological guidance, to support the further development of low-dimensional HMHs.
KW - design strategies
KW - dimensional regulation
KW - hybrid metal halides
KW - optoelectronic applications
KW - structure–property relationships
UR - https://www.scopus.com/pages/publications/105043926103
U2 - 10.1002/sstr.70460
DO - 10.1002/sstr.70460
M3 - Review article
AN - SCOPUS:105043926103
SN - 2688-4062
VL - 7
JO - Small Structures
JF - Small Structures
IS - 7
M1 - e70460
ER -