Ultra-Sensitive Optoelectronics Enabled by Atomically Tailored Interfaces Engineering for Advanced Perceptual Imaging.
basic_science · Level V
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- Record sourced from PubMed, PMID 40509606.
- Also identified by DOI 10.1002/adma.202507636.
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Abstract
Ultra-weak light detection represents a critical enabling technology for next-generation imaging, remote monitoring, and autonomous systems, where efficient charge transfer is essential to achieve ultralow detection thresholds. Herein, an interfacial lattice-distortion engineering strategy is proposed by selectively substituting phenylethyl ammonium (PEA) cations with 4-chlorophenylethylammonium (Cl-PEA) at perovskite heterointerfaces. This substitution induces beneficial octahedral distortions, boosting hole transport efficiency in few-layer 2D perovskites by 26%. When integrated with MoS<sub>2</sub>/WSe<sub>2</sub> heterostructures, the optimized van der Waals contact and enhanced energy-level alignment yield a high-performance photodetection, including a responsivity of 2.7 × 10<sup>4</sup> A/W, a detectivity up to 5.26 × 10<sup>14</sup> Jones, and an exceptionally low noise equivalent power of 0.42 fW Hz<sup>-1/2</sup>. Notably, the device operates self-powered at incident power densities as low as 0.54 µW cm<sup>-2</sup>, enabling real-time, on-chip image processing even under dim-light conditions. This functionality is further utilized for noise reduction in traffic-light images prior to object detection with YOLOv11 network, establishing a direct bridge between device-level photodetection and machine-learning-driven recognition. This interfacial lattice distortion engineering paradigm in van der Waals-contacted 2D devices opens new avenues for designing ultrasensitive, low-noise, and functionally integrated optoelectronic devices.