Tailoring and Unraveling Surface Functionalization of Nanomaterials via Self-Reporting NIR-Induced Upconversion
Guangli He1,2, Wenhui Li1, Jingyi Hao1
1Henan Joint International Research Laboratory of Living Polymerization and Functional Nanomaterials, Henan Key Laboratory of Advanced Nylon Materials and Application, School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, China.
Abstract:
The surface functionalization chemistry of nanomaterials remains a black box, where the dynamic modification process is conventionally imperceptible, which severely limits the rational design of advanced nanohybrids. Herein, a holistic strategy that transforms upconversion nanorods (UCNR) surface functionalization from an empirically treated outcome into an optically self-reporting process via near-infrared (NIR)-mediated photoinduced electron/energy transfer-reversible addition-fragmentation chain transfer (PET-RAFT) polymerization is present. This three-in-one design, where the UCNR concurrently acts as a NIR-harvesting antenna, polymerization substrate, and optical signaling unit, enables the precise, temporally controlled growth and monitoring of polymer shells with tunable thickness and grafting density. Critically, a linear correlation between the evolving polymer shell architecture and the upconversion luminescence intensity was unraveled, thereby turning the optical signal into a real-time, nondestructive probe that reveals the invisible surface modification process. Building upon this self-monitoring capability, the polymer brushes were further engineered to template the in situ growth of gold nanoparticles, establishing a cascaded energy transfer pathway for efficient photothermal conversion. Using the nanohybrids as a built-in ratiometric fluorescent nanothermometer, the nanohybrid enables real-time temperature feedback during NIR irradiation as precise nanothermometry. This work establishes a new paradigm for creating intelligent, self-sensing nanoplatforms with profound implications for precision theranostics and adaptive photonic materials.

