The mid-IR spectroscopic properties of doped low-phonon and crystals grown by the Bridgman technique have been investigated. Using optical excitations at and , both crystals exhibited IR emissions at , , , and at room temperature. The mid-IR emission at 4.5 µm, originating from the transition, showed a long emission lifetime of for doped , whereas doped exhibited a shorter lifetime of . The measured emission lifetimes of the state were nearly independent of the temperature, indicating a negligibly small nonradiative decay rate through multiphonon relaxation, as predicted by the energy-gap law for low-maximum-phonon energy hosts. The room temperature stimulated emission cross sections for the transition in doped and were determined to be and , respectively. The results of Judd–Ofelt analysis are presented and discussed. 
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                    This content will become publicly available on May 1, 2026
                            
                            Fully plasma-based electron injector for a linear collider or XFEL
                        
                    
    
            We demonstrate through high-fidelity particle-in-cell (PIC) simulations a simple approach for efficiently generating GeV electron beams with the necessary charge, energy spread, and emittance for use as an injector in a future linear collider or a next generation XFEL. A high quality injected bunch is generated by self-focusing an unmatched electron driver in a nonlinear plasma wakefield. Over pump depletion distances, the drive beam dynamics and self-loading effects lead to high energy, low-energy spread output beams. For plasma densities of , PIC simulation results indicate that self-injected beams with charge can be accelerated to 20 GeV with projected core energy spreads of , normalized slice emittances of , peak normalized brightness of , and transfer efficiencies of . 
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                            - Award ID(s):
- 2108970
- PAR ID:
- 10644762
- Publisher / Repository:
- American Physical Society
- Date Published:
- Journal Name:
- Physical Review Research
- Volume:
- 7
- Issue:
- 2
- ISSN:
- 2643-1564
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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