Regarding to synthetic linkage chemistry, we have developed a series of novel synthetic methodologies including HWE/Wittig 2D polycondensation, Michael-addition-elimination-assisted Knoevenagel 2D polycondensation, and so on. The obtained 2D PAVs show crystalline domain sizes up to 100 nm beyond the state-of-the-art.
The developed SMAIS method represents a groundbreaking approach in guiding the 2D polymerization of rigid monomers on the water surface, enabling the synthesis of highly crystalline 2D CPs, a step beyond conventional solution method. On the other hand, this synthesis approach allows for precise thickness control, ranging from monolayer to few layers, and up-scalable preparation of 2D CP films, which has not been fully realized in the previous methodologies.
Using the SMAIS method, we have synthesized many unprecedented few-layer 2D CPs on the water surface, for example, 2D polyimide, 2D polyamide, 2D polyimine, quasi 2D polyaniline and 2D polypyrrole, and so on. The crystal structure of 2D CPs and the defect sites have been resolved at the molecular level.
Regarding to electronic properties of 2D CPs, combining multiscale dc and ac measurements and theoretical calculation, we have established reliable structure-electronic property relationships in this type of materials. We demonstrated the first example of fully thiophene-based 2D PAV and 2D BBLs, which have presented optical band gaps as narrow as 1.3 eV. The 2D BBLs shows a unique band transport behavior with a high charge mobility of 970 cm2V1s1 at room temperature, which represents a record among the reported polymer semiconductors.
Moving to function, we integrated free-standing 2D polymer films into organic thin film/Si nanowire-based FETs to mimic neuronal synapses. Charged 2D CP single crystals were used as an anion-selective membrane for osmotic energy generation, superior to graphene and boron nitride. Moreover, 2D PAV films were utilized for coating the graphite cathode in batteries, enabling improvement of capacity and cycling life.
In 2021, we reported the preparation of 2D polyimide-graphene vdWhs, which showed an interlayer charge transfer time of about 60 fs comparable to that of the fastest inorganic vdWHs. Moreover, 2D polyimide/MoS2 vdWH exhibits strong interlayer coupling, significant charge transfer, and remarkably high electron mobility, exceeding that of pristine MoS2.