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Sub-Stoichiometric Supramolecular Co-Assembly Strategy Enabling Efficient Chirality Transfer and CPL Amplification
Sravan Baddi1, Fengli Gao1, Changli Zhao1
1State Key Lab of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Key Laboratory For Molecular Engineering of Chiral Drugs, Shanghai Jiao Tong University, Shanghai, P. R. China.
None:
Chirality transfer enables molecular asymmetry to propagate from discrete building blocks into hierarchical assemblies, providing a fundamental framework for engineering functional nanostructures. However, conventional supramolecular co-assembly typically necessitates stoichiometric or excess guest loading to achieve effective chirality transfer, a requirement that often compromises structural fidelity and chiroptical efficiency due to inefficient stereochemical communication. Here, we report a sub-stoichiometric co-assembly strategy wherein trace amounts of an achiral modulator (berberine, BBR) cooperatively intercalate within a chiral supramolecular framework (LPF/DPF; left-/right-handed phenylalanine-based gelators) to induce potent chiroptical amplification. We demonstrate that a minimal guest-to-host mole ratio of 0.2 is sufficient to capture and amplify host chirality, yielding luminescence dissymmetry factors (|glum| ≈ 0.08) an order of magnitude higher than those produced by stoichiometric equivalents. Mechanistic investigations reveal that sparse intercalation at this sub-stoichiometric threshold preserves the underlying hydrogen-bonded network while enforcing a precise helical registry through synergistic π-π and electrostatic interactions that ensures thermodynamic stability (ΔG°). While stoichiometric excess results in kinetically trapped, non-helical aggregates, this sub-stoichiometric control establishes a robust design principle for translating molecular-scale interactions into high-performance chiroptical materials with minimal guest loading.
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