Surface Passivation of HgTe Nanocrystals Enabling E<sub>G</sub>/2 Open-Circuit Voltage and Their Coupling to Dielectric Cavity for Narrow Detection.

Colle, Albin; Gureghian, Clement; Mastrippolito, Dario; Cavallo, Mariarosa; Roh, Jiho; Paye, Marco; Gemo, Tommaso; Almeida, Diogo et al. · Adv Mater · 2026

basic_science · Level V

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Abstract

Colloidal HgTe nanocrystals (NCs) offer a versatile, solution-processable platform for infrared optoelectronics, yet their integration into high-performance diodes has long been hindered by surface-trap-limited open-circuit voltage (V<sub>OC</sub>), high dark currents, and insufficient thermal robustness. Here, we demonstrate that ultrathin CdS shells grown around HgTe cores, combined with an optimized cation-exchange protocol, enable unprecedented passivation of trap states while reducing species interdiffusion and simultaneously improving interfacial band alignment. Implemented in a diode architecture employing SnO<sub>2</sub> electron-transport layers and Ag-doped CdTe hole-selective contacts, these HgTe/CdS NCs yield a two orders of magnitude reduction in dark current and a V<sub>OC</sub> of 420 mV; exceeding half the optical bandgap for the first time in HgTe-based NC photodiodes. Operated at room temperature, the devices exhibit detectivities up to 1.5 × 10<sup>1</sup> <sup>1</sup> Jones and fast response times below 200 ns. Leveraging the reduced dark current and improved film homogeneity, we further integrate the photodiodes into a dielectric Bragg cavity to achieve ultranarrow detection linewidths down to 90 cm<sup>-1</sup> at 1.55 µm. This diode design benefits from a strong field enhancement, while the device absorption limits the linewidth. Our results establish surface-passivated HgTe NCs as a viable route toward compact, narrowband, and thermally stable infrared photodetectors.