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Updated: Jan 12, 2026

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Black aluminum molecular rings embedded in glass: ultralow-bandgap composites for broadband optical limiting
Zhihao Lu1, Zhicheng Wu1, Xiaoyu Liu2
1State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Developing nonlinear optical (NLO) materials from earth-abundant elements is key to sustainable photonics. We report aluminum molecular rings (Al6) stabilized by catechol ligands-the smallest main-group molecular rings known. This versatile strategy enables precise structural control and systematic co-ligand tuning, establishing a robust platform for structure-property studies. Unlike conventional transparent aluminum-oxygen clusters (AlOCs), these catecholate Al6 systems exhibit a striking black color, ultranarrow band gaps, and exceptional third-order NLO responses, unveiling a new frontier for aluminum-based hybrid materials. For practical implementation, the Al6 rings were successfully incorporated into bulk silicate glass matrices via a sol-gel process while fully retaining their predefined NLO functionalities. The resulting composites exhibit strong nonlinear optical responses at both 532 nm and 1064 nm, indicating broad-band operational capability. Among these, AlOC-186, with the smallest dimension (1.8 nm), stands out by delivering the highest third-order NLO susceptibility Imχ(3) under picosecond excitation at both wavelengths. This work highlights the potential of cost-effective, lightweight elements as competitive alternatives to conventional heavy-metal-based optical limiters and establishes a new avenue for developing high-performance customizable NLO devices.
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