5 research outputs found
Copper-Catalyzed Reaction of Ketenimine and in Situ Generated Immonium Ion: Access to α<i>,</i>β‑Unsaturated Amidines
A Cu-catalyzed
three-component reaction of alkyne, azides (sulfonyl
or phosphoryl azides), and <i><i>N</i></i>,<i><i>N</i></i>-dialkyloxyformamide dialkyl acetal via
electrophilic addition of immonium ion to copper ketenimine is reported.
This new protocol for the preparation of α,β-unsaturated
amidine derivatives appears to offer high yield, mild conditions,
and wide substrate scope. The reaction might involve the processes
of copper ketenimine intermediate formation, electrophilic addition,
and isomerization
Accurate and Rapid Genetic Tracing the Authenticity of Floral Originated Honey with the Molecular Lateral Flow Strip
Honey is a natural product and is heavily consumed for its well-known nutritional functions. Honeys with different floral origins possess distinctive flavors, tastes, functions and economic values. It is vital to establish an effective strategy for identifying the authenticity of honey. The intrinsic genetic materials of pollen were adopted as target analytes for the effective identification of honey with floral origins. With an optimized protocol for the rapid gene extraction from honey, target genetic templates were amplified on-site with a portable device. Conveniently, all on-site amplified functional products were easily judged by the designed lateral flow strip (LFS), which was defined as the molecular LFS in this research. Additionally, the entire on-site genetic authentication of honey was completed in less than 2 h by visual observation. Commercial honey products have been successfully identified with excellent accuracy. This low-cost, high-efficiency and easy-operational strategy will greatly benefit the quality guarantee of foods with specific functions and geographical markers
Multicolor Fluorescent Inks Based on Lanthanide Hybrid Organogels for Anticounterfeiting and Logic Circuit Design
With the rapid development of information technology,
the encrypted
storage of information is becoming increasingly important for human
life. The luminescent materials with a color-changed response under
physical or chemical stimuli are crucial for information coding and
anticounterfeiting. However, traditional fluorescent materials usually
face problems such as a lack of tunable fluorescence, insufficient
surface-adaptive adhesion, and strict synthesis conditions, hindering
their practical applications. Herein, a series of luminescent lanthanide
hybrid organogels (Ln-MOGs) were rapidly synthesized using a simple
method at room temperature through the coordination between lanthanide
ions and 2,6-pyridinedicarboxylic acid and 5-aminoisophthalic acid.
And the multicolor fluorescent inks were also prepared based on the
Ln-MOG and hyaluronic acid, with the advantages of being easy to write,
color-adjustable, and water-responsive discoloration, which has been
applied to paper-based anticounterfeiting technology. Inspired by
the responsiveness of the fluorescent inks to water, we designed a
logic system that can realize single-input logic operations (NOT and
PASS1) and double-input logic operations (NAND, AND, OR, NOR, XOR).
The encryption of a binary code can be actualized utilizing different
luminescent response modes based on the logic circuit system. By adjusting
the energy sensitization and luminescence mechanism of lanthanide
ions in the gel structure, the information reading and writing ability
of the fluorescent inks were verified, which has great potential in
the field of multicolor pattern anticounterfeiting and information
encryption