Sajid Saikia, Animesh Ghosh, Diogo A. Gálico, Claudia Manuela Santos Calado, Muralee Murugesu, Angshuman Nag
ABSTRACT The success of near‐infrared (NIR) to visible upconversion (UC) and NIR downshifting photoluminescence (PL) is mainly due to 4 f ‐4 f energy transfer (ET) interactions of lanthanide ion pairs. This concept was later extended to 3 d ‐4 f ion pairs, where Cr 3+ enabled UC PL via intra‐configurational spin‐flip (ICSF) transition. Interestingly, recent studies reveal that heavier transition‐metal ions such as Mo 3+ (4 d ) can exhibit multiple ICSF emissions spanning the NIR‐I and NIR‐II regions. This finding raises a key question: can a 4 d ‐4 f ion pair be designed to achieve multimode downshifting NIR and UC PL by combining f ‐ f and ICSF d ‐ d transitions? Herein, we report the first synthesis of Mo 3+ /Er 3+ ‐codoped Cs 2 NaInCl 6 double perovskite, exhibiting tunable NIR‐II downshifting emissions at 1095 nm (Mo 3+ ) and 1540 nm (Er 3+ ). Both emissions can be achieved by excitation of either Mo 3+ d ‐electrons or Er 3+ f ‐electrons through efficient 4 d ‐4 f ET, as established by temperature‐dependent (300–6.3 K) PL. Furthermore, this 4 d ‐4 f interaction enables the demonstration of two‐photon UC PL from Mo 3+ d ‐electrons at 700 nm upon Er 3+ f ‐electrons excitation at 980 nm. This finding establishes 4 d ‐4 f interaction as a strategy to simultaneously tune downshifting and UC pathways, opening a new opportunity to tailor optical and optoelectronic materials.