Stellar Yields of Rapidly Rotating Population III Stars for the High Redshift Universe
astro-ph.GA, astro-ph.SR
Submitted: 2026-09-18
Updated: 2026-09-18
Comments: 21 pages, 7 figures, 4 tables. Submitted to ApJ. Comments are welcome
License: http://creativecommons.org/licenses/by/4.0/
The gist: JWST has revealed rapid nitrogen enrichment in high redshift galaxies, renewing the need for stellar yields that follow metal free stars beyond the main sequence and across their final fates.
Terminology
Abstract
JWST has revealed rapid nitrogen enrichment in high redshift galaxies, renewing the need for stellar yields that follow metal free stars beyond the main sequence and across their final fates. We present Geneva stellar evolution models of rapidly rotating Pop III stars with 5 at most M ini/M at most 200 and upsilon ini/upsilon crit=0.7, evolved to the end of core O-burning. We calculate gross adopted ejecta masses using fate dependent remnant prescriptions spanning core collapse, pulsational pair instability, and complete pair instability. Our quantitative results focus on hydrostatically produced CNO material, while heavier species are treated as final-model reservoirs. Rotation produces primary CNO material by mixing newly synthesized C and O into H-burning layers, where CNO cycling generates nitrogen. The resulting abundance signature depends strongly on which stellar layers escape. Models leaving compact remnants can reach (N/O)=-0.49 while remaining poor in Si/S/Ar/Ca-rich material. PISN models eject the largest nitrogen masses, M N=1.8 -- 2.5,M, but also release 57 -- 65,M of oxygen, lowering (N/O) to-1.44 to-1.29. Thus, high nitrogen yields do not imply high N/O ratios. This trend persists after IMF weighting, as increasingly top-heavy populations add oxygen and deep alpha material faster than they build a nitrogen dominated mixture. Our grid provides a new CNO-focused prompt-enrichment dataset for interpreting nitrogen-rich systems including GN-z11, CEERS-1019, and GS 3073.
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