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Chiral purity is crucial in life sciences, emphasizing the importance of precise enantiomeric identification and the development of analytical techniques. Here, we design functional dyes with visual chiral recognition capabilities by introducing recognition units 2-amino-1,2-diphenylethanol into vibration-induced emission molecules. The unambiguous differentiation in luminescent colors upon binding to enantiomers facilitates the efficient recognition of enantiomers and the analysis of enantiomeric excess. The chiral recognition process originates from co-assembly under charge-aided hydrogen bonding interactions, which is significantly impacted by the steric hindrance effect, and further affects the planarization of the excited state conformation of the dye. This co-assembly process precisely amplifies the dynamics at the molecular level into macroscopic observable signals for real-time, highly sensitive recognition. Furthermore, we establish a sophisticated optical analysis system by correlating Red-Green-Blue values and CIE coordinates to analyze the enantiomeric excess of chiral molecules. This work opens a distinct avenue for visual chiral recognition and inspires the development of advanced optical materials in chiral sensing chemistry.
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http://dx.doi.org/10.1038/s41467-025-63065-2 | DOI Listing |
Adv Healthc Mater
September 2025
Russell School of Chemical Engineering, The University of Tulsa, Tulsa, OK, 74104, USA.
The development and multiple bio-applications of chiral MXene nanosheets and derived quantum dots-based heterostructures as next-generation plant biostimulants are recently reported in Small for the first time. This chirality-induction came at a critical juncture in the field, as the safety efficacy of synthetic low-dimensional materials, including MXenes, challenges their clinical, agricultural, and environmental translatability. Using a rational surface engineering and structural-modification strategy, distinct left- or right-handed chiral MXenes are developed.
View Article and Find Full Text PDFJ Chromatogr A
August 2025
Faculty of Science, Kunming University of Science and Technology, Kunming 650500, China. Electronic address:
Over the past decade, cyclodextrins (CDs), as cyclic oligosaccharides, have emerged as pivotal supramolecular hosts in molecular imprinting field owing to their distinctive "hydrophobic cavity-hydrophilic shell" structure. The synergistic recognition effect of molecular imprinting sites and cyclodextrin cavity has led to the development of cyclodextrin-based supramolecular imprinted polymers (CD-SMIPs), which has attracted significant research attention. The hydrophobic cavity functions as a selective molecular "pocket", enabling precise encapsulation of target analytes through size and polarity matching while effectively excluding hydrophilic interferents in complex matrices.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Department of Chemistry and Biochemistry, The Ohio State University, 100 West 18th Avenue, Columbus, OH, 43210, USA.
We describe the preparation, conformational dynamics, and stereoselective recognition characteristics of water-soluble pillar[6]arenes pS-2 and pR-2. These two novel and diastereomeric cavitands comprise a 2,5-bis(ethoxy)pillar[6]arene core with one of six phenylene ring conjugated to two hexaanionic dendrons. Each dendron includes an (S)-glutamic acid amidated with two tris-carboxylic Behera's amines.
View Article and Find Full Text PDFMicromachines (Basel)
August 2025
Postdoctoral Innovation Practice Base, Chengdu Polytechnic, 83 Tianyi Street, Chengdu 610041, China.
Polarization-sensitive photodetection is critical for advanced optical systems, yet achieving simultaneous high-fidelity recognition of the circularly polarized (CP) and linearly polarized (LP) light with compact designs remains challenging. Here, we use COMSOL 5.6 software to demonstrate a silicon metasurface-integrated MCT photodetector that resolves both CP and LP signals through a single ultrathin platform.
View Article and Find Full Text PDFMolecules
August 2025
School of Chemistry and Chemical Engineering, Chongqing University, Chongqing 401331, China.
Chirality is a prevalent characteristic of natural systems that plays a significant role in the biological activities of living organisms, and the enantiomers typically exhibit different pharmacological activities. Consequently, developing methods with high selectivity and sensitivity for chiral analysis is of great importance for pharmaceutical engineering, biomedicine, and food safety. Electrochemical chiral recognition has garnered significant attention owing to its unique advantages, including simplicity of operation, rapid response, and cost-effectiveness.
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