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Verified CAS / Academic Author2 Decoded Studies

Prof. TAO Ye

Key Laboratory of UV-Emitting Materials and Technology (Northeast Normal University), Ministry of Education, Changchun 130024, China

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3861-4

Breaking the Fused Ring: A Novel MR-TADF Skeleton for Solution-Processed Pure-Red OLEDs

Multi-resonance thermally activated delayed fluorescence (MR-TADF) emitters are pivotal for achieving high color purity and 100% internal quantum efficiency in organic light-emitting diodes (OLEDs). However, extending emission to the red region (>600 nm) remains challenging due to limited MR cores and the synthetic complexity of fused-ring extensions. Here, we report a novel strategy that breaks the fused ring by employing a linear conjugated diene linker between nitrogen and carbonyl moieties, enabling simultaneous introduction of three MR units in one step with high yield. Two emitters, NF-CON1 and NF-CON2, exhibit pure-red emission at 620 nm with narrow full-width at half-maximum (FWHM) below 35 nm in dilute toluene, small Stokes shifts of 26 nm, and weak solvatochromic shifts (~25 nm from toluene to ethanol), confirming the MR-characteristic short-range charge transfer. The emitters show low reorganization energies (0.209 eV for NF-CON1 and 0.194 eV for NF-CON2), singlet-triplet energy gaps of ~0.2 eV, and high reverse intersystem crossing rates of ~3.0×10^5 s^-1. In doped films with m-MTDATA, delayed lifetimes of 31–40 μs are achieved. These properties, combined with high oscillator strengths, ensure efficient RISC and high IQE. The facile synthesis and solution-processability of this MR-TADF skeleton address the bottlenecks of cost and scalability, offering a promising route for practical pure-red OLEDs.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3375-8

A self-powered artificial tactile perception system with self-protection functionality based on tellurene threshold switching memristor

Artificial tactile perception systems require efficient signal conversion and pulse encoding to emulate biological touch. Conventional CMOS-based approaches suffer from circuit complexity and high power consumption. This work demonstrates a two-dimensional tellurene (Te) threshold switching (TS) memristor with low high-resistance-state variation, enabling artificial nociceptive behavior and leaky integrate-and-fire (LIF) neuron emulation. The Te TS memristor exhibits abrupt resistance switching and low power consumption. By integrating this LIF neuron with a piezoelectric nanogenerator (PENG), a self-powered artificial tactile perception system is constructed. Under mechanical stimulation, the system demonstrates a self-protection function analogous to the hand retraction reflex. The bio-inspired architecture eliminates external power sources and reduces circuit overhead. Key performance metrics include stable threshold switching, low variation in high resistance state, and reliable spike encoding. This work validates the potential of 2D tellurene for next-generation bio-inspired electronics and human-machine interaction systems, offering a pathway toward energy-autonomous tactile sensing with intrinsic protection mechanisms.