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WZ
Verified CAS / Academic Author2 Decoded Studies

Prof. WU Zeng

School of Physical Science and Technology, ShanghaiTech University

Co-Affiliations:Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4049-0

Adaptive Molecular Weaving for Efficient Isotope Separations

Isotope separations, particularly the separation of water isotopologues (H2O, HDO, D2O), are critical yet challenging due to their nearly identical physicochemical properties. Conventional methods such as distillation and electrolysis are energy-intensive and inefficient. Here, we report a molecularly woven porous polymer (PWPN-1) that achieves efficient room-temperature separation of water isotopologues via adaptive framework dynamics. PWPN-1 is constructed from interlaced two-dimensional woven layers linked by B←N coordination nodes, forming a three-dimensional flexible framework. Upon activation, it undergoes reversible contraction along the crystallographic c-axis, exhibiting a breathing behavior that creates differentiated adsorption sites favoring D2O retention. Gas-phase breakthrough experiments demonstrate markedly different retention times for H2O (223 min g−1) and D2O (686 min g−1), with clearly resolved breakthrough curves for H2O/HDO/D2O mixtures under continuous flow. The material is synthesized on a 100-gram scale with ~95% yield and remains stable over multiple adsorption-desorption cycles. Single-crystal structure analyses, combined with path-integral molecular dynamics and DFT calculations, reveal that D2O exhibits slightly stronger binding energies (by 1–2 kJ mol−1) and higher diffusion barriers, arising from nuclear quantum effects. These small energetic differences are amplified by the flexible woven topology, enabling efficient isotope separation under ambient conditions. This work represents a conceptual advance in materials design, transposing macroscopic weaving to the molecular scale for practical isotope enrichment.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3284-x

Naphtho[2,3-b]thiophene diimide-terminated acceptor triads for improved n-type organic semiconductors

The development of high-performance n-type organic semiconductors is critical for advancing organic field-effect transistors (OFETs) and p-n complementary logic circuits. This study reports two novel n-type triple-acceptor triads, NTI-BTT and NTI-BT, based on naphtho[2,3-b]thiophene diimide (NTI), a monothiophene-extended naphthalene diimide (NDI). The influence of thiophene fusion versus spacer insertion on physicochemical and charge transport properties is systematically investigated. NTI-terminated triads exhibit enhanced electron-withdrawing capabilities, deeper energy levels, and more planar backbones compared to NDI-based counterparts. However, NTI-BT-based OFETs suffer a substantial drop in electron mobility to 0.004 cm2 V−1 s−1 due to polycrystalline structure with multiple grain boundaries that increase trap state density. In contrast, introducing thiophene spacers between NTI and benzothiadiazole units in NTI-BTT effectively enhances n-type charge transport by improving π-π interactions and reducing intermolecular distances, achieving a short π-π stacking distance of 3.45 Å. Consequently, NTI-BTT exhibits a significantly improved electron mobility of 0.13 cm2 V−1 s−1, four times higher than the NDI-based counterpart. These findings provide valuable insights into molecular design principles for high-performance n-type organic semiconductors, highlighting the impact of molecular structure and intermolecular interactions on charge transport.