Soft-lattice nanocrystal photon management hinges on controlling relaxation branching, diverting excitations from interfacial losses into radiative pathways. CsPbCl 3:Yb 3+ quantum cutting benchmarks this, but is still constrained by surface trapping, suboptimal Yb-pair branching energetics, and limited thermal/environmental stability. Here we implement a (2-bromoethyl)trimethylammonium bromide (BETAB)-enabled passivation strategy with annealing-triggered gradient halide reconstruction. BETAB replaces OA/OAm to reduce surface losses, while mild annealing activates ligand-associated Br – as a local reservoir to drive Br – in-diffusion with Cl – counter-migration, writing a continuous radial Cl/Br gradient (Br-rich interior). The graded halide landscape suppresses interfacial quenching and creates a radial band-edge bias that funnels excitations into the QC pathway, accelerating exciton-to-Yb 3+ transfer. Consequently, QC PLQY increases stepwise from 84.7% (pristine) to 125.4% (BETAB-treated) and 155.2% (annealed). Integrated as spectral-conversion films on Si photodetectors, the treated NCs enable 200–1100 nm detection with responsivity up to 0.5 A W –1, EQE of 64.17%, and D * >1.02 × 10 12 Jones (300–1100 nm) and 4.8 × 10 11 Jones (200–300 nm), delivering clear ultrabroadband imaging in 7 × 7 arrays. The reconstructed NCs further show ATQ-like behavior (134% at ∼333 K) and improved aging stability (86.1% retention after 60 days vs 29.2% for pristine). Overall, ligand-enabled gradient writing reroutes relaxation for robust photon management.
Yang et al. (Sat,) studied this question.