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f–f-Like d–d Transition for Ultra-Narrow NIR Emission

Implementing Organization

Indian Institute of Science
Principal Investigator
Dr. Angshuman Nag
Indian Institute Of Science Education And Research (Iiser), Pune
angshuman@iiserpune.ac.in

Project Overview

Why f-f transition yields vibration-free narrow near-infrared (NIR) emission but d-d transition is vibrationally coupled and broad? Lanthanide (Yb3+, Nd3+, Pr3+, Er3+) doped in different solid matrices show ultra-narrow NIR emissions in the range of 900-1600 nm. The shielded f-electrons do not interact with surrounding ligands. So, the excitation/de-excitation of f-electrons via f-f transitions do not influence the metal-ligand (M-L) bond length. In other words, the f-f transition is purely electronic in nature, without involving any change in vibrational states. This vibration-free, atomic-like f-f transition yields ultra-narrow emissions, and also, does not follow the Kasha's rule. In contrast, typical d-d electronic transitions like t2g³eg⁰ to t2g²eg¹ change the geometric distribution of d-electrons around the metal ion. Therefore, the metal-ligand (M-L) bond length changes with d-d transitions, since the d-electrons interact with the ligands. So, a typical d-d electronic transition is accompanied with vibrational changes, leading to a broad emission, that follows the Kasha's rule. Can d-d transitions behave like f-f transitions? The answer is yes, provided the d-d transition is an intra-configurational (like t2g³eg⁰ to t2g³eg⁰) spin-flip transition. The t2g³eg⁰ to t2g³eg⁰ transition does not change the electronic configuration around the metal ion, and therefore, M-L bond length in the ground and excited state remains unchanged. Only the electronic spin is changed during the transition. So, such intra-configurational spin-flip transitions are purely electronic and free from vibrations. Therefore, such unique d-d transitions behave like f-f transitions. Cr3+ and Mn4+ with 3d³ electrons show f-f-like ultra-narrow visible emission (around red), leading to commercial Ruby laser and white LEDs. What is the gap and prospect of ultra-narrow d-d transitions NIR emission? To extend this intra-configurational (like t2g³eg⁰ to t2g³eg⁰) spin-flip transitions from (Cr3+ and Mn4+) visible to NIR region, one needs to use dopants with 4d or 5d electrons that have high crystal field and smaller Racah parameter. For example, Mo3+ (4d³), W3+(5d³) or Re4+(5d³) can yield ultra-narrow NIR emission, but only in air-free (vacuum) conditions at low temperatures (50 K or below). This is because these 4d and 5d dopants easily oxidize in air (Mo3+ (4d³) to Mo6+ (4d⁰)), completely losing the NIR emission in ambient conditions. Our present proposal is to overcome this issue by designing new materials, yielding stable, intense, and ultra-narrow d-d transition emission in the wavelength range of 800-1600 nm. The stability in ambient conditions will open up the scopes of applications like ultra-narrow NIR LED, lasers and optical fiber. Why is the ultra-narrow d-d NIR emission significant? The proposed materials will show f-f-like d-d narrow NIR emissions, but at wavelengths of the d-d emissions will be different from f-f emissions. Therefore, one can get ultra-narrow d-d NIR emissions beyond the scopes of lanthanides like Nd3+ (Nd:YAG lasers) or Er3+ (Er based optical fiber). So, the proposed materials can lead to new ultra-narrow NIR LEDs, NIR lasers or optical fibers operating at different wavelengths. Importantly, this project will provide insights about the pros and cons of f-f and d-d transitions based vibration-free ultra-narrow NIR emissions. Also, in general, the transition metals are more abundant than the rare-earth lanthanides. What are the main focuses of the project? Material design (Mo3+, W3+, Re4+, Ru5+, Ni2+, etc doped halides and oxide hosts) will remain the main emphasis of the project, followed by the photophysical understanding of the excitation and emission processes of the ultra-narrow NIR emission. The newly discovered materials and NIR emissions will be explored for applications like NIR LEDs, NIR lasers, and optical fibers.
Funding Organization
Funding Organization
Anusandhan National Research Foundation (ANRF)
Quick Information
Area of Research
Chemical Sciences
Focus Area
Physical Chemistry
Start Date
19 Mar 2026
End Date
18 Mar 2029
Status
ongoing
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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