Under Pressure: Decoding the Effect of High Densities on Derived Nebular Properties
Abstract
Recent JWST observations have uncovered a population of compact, high-redshift () galaxies exhibiting extreme nebular conditions and enhanced nitrogen abundances that challenge standard chemical evolution paradigms. We present a joint UV and optical abundance analysis using a new suite of photoionization models covering a wide density range ( cm), combined with HST and JWST spectroscopy for a sample of star-forming galaxies across . We find that assuming uniform, low-density conditions ( cm) in high-density environments ( cm) can bias nebular diagnostics by overestimating (up to 1800 K), overpredicting (by dex), and underestimating O/H (up to 0.67 dex), while only modestly inflating N/O. Therefore, robust abundance determinations at high- require a multi-phase density model. Using this model, we recalculate O/H and N/O abundances for our sample and present the first diagnostics and ICFs for high-ionization UV N lines. We find that the UV tracers systematically overestimate N/O by dex relative to the optical benchmark. We find that N/O increases with redshift, correlating with both and star formation rate surface density (), suggesting that N/O is temporarily enhanced in compact, high-pressure environments. However, the evolution with is more gradual than the scaling of virial halo densities, suggesting that evolution is shaped by both cosmological structure growth and baryonic processes. These trends point to prompt N/O enrichment potentially driven by very massive stars, with key implications for interpreting UV emission and determining reliable chemical abundances from JWST observations of the early universe.
Cite
@article{arxiv.2510.21960,
title = {Under Pressure: Decoding the Effect of High Densities on Derived Nebular Properties},
author = {Z. Martinez and D. A. Berg and B. L. James and K. Z. Arellano-Córdova and D. P. Stark and P. Senchyna and E. D. Skillman and N. S. J. Rogers and J. Chisholm},
journal= {arXiv preprint arXiv:2510.21960},
year = {2026}
}
Comments
32 pages with 16 figures and 5 tables. Appendix includes additional figures and tables. Accepted to ApJ