How Dust Models Shape High-z Galaxy Morphology: Insights from the NewCluster Simulation

Fuente: arXiv
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Autores principales: Byun, Gyeong-Hwan, Jang, J. K., Scofield, Zachary P., Ahn, Eunmo, Baes, Maarten, Dubois, Yohan, Han, San, Jeon, Seyoung, Kim, Juhan, Pichon, Christophe, Rhee, Jinsu, Montero, Francisco Rodríguez, Yi, Sukyoung K.
Formato: Preprint
Publicado: 2025
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author Byun, Gyeong-Hwan
Jang, J. K.
Scofield, Zachary P.
Ahn, Eunmo
Baes, Maarten
Dubois, Yohan
Han, San
Jeon, Seyoung
Kim, Juhan
Pichon, Christophe
Rhee, Jinsu
Montero, Francisco Rodríguez
Yi, Sukyoung K.
author_facet Byun, Gyeong-Hwan
Jang, J. K.
Scofield, Zachary P.
Ahn, Eunmo
Baes, Maarten
Dubois, Yohan
Han, San
Jeon, Seyoung
Kim, Juhan
Pichon, Christophe
Rhee, Jinsu
Montero, Francisco Rodríguez
Yi, Sukyoung K.
contents Dust plays a pivotal role in shaping the observed morphology of galaxies. While traditional cosmological simulations often assume a fixed dust-to-gas (DTG) or dust-to-metal (DTM) mass ratio to model dust effects, recent advancements have enabled on-the-fly (OTF) dust modeling that captures the spatial and temporal evolution of dust. In this work, we investigate the impact of dust modeling on galaxy morphology using the NewCluster simulation, which implements a detailed OTF dust model. We generate mock images of NewCluster galaxies under both OTF and fixed DTM models using the radiative transfer code SKIRT, and compare their morphology to JWST observations. We measure morphology indices and use the $G-M_{20}$ test to classify galaxies. We find that the OTF galaxy models exhibit brighter centers and more pronounced bulges than those of the fixed DTM models, resulting in a lower late-type galaxy (LTG) fraction, particularly at high redshifts. This central brightening is linked to a phenomenon we refer to as the DTM cavity, a localized depression in the DTM ratio driven by intense bulge starbursts. Our results highlight the importance of modeling dust evolution in a physically motivated manner, as fixed DTM models fail to capture key morphological features.
format Preprint
id arxiv_https___arxiv_org_abs_2508_18374
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle How Dust Models Shape High-z Galaxy Morphology: Insights from the NewCluster Simulation
Byun, Gyeong-Hwan
Jang, J. K.
Scofield, Zachary P.
Ahn, Eunmo
Baes, Maarten
Dubois, Yohan
Han, San
Jeon, Seyoung
Kim, Juhan
Pichon, Christophe
Rhee, Jinsu
Montero, Francisco Rodríguez
Yi, Sukyoung K.
Astrophysics of Galaxies
Dust plays a pivotal role in shaping the observed morphology of galaxies. While traditional cosmological simulations often assume a fixed dust-to-gas (DTG) or dust-to-metal (DTM) mass ratio to model dust effects, recent advancements have enabled on-the-fly (OTF) dust modeling that captures the spatial and temporal evolution of dust. In this work, we investigate the impact of dust modeling on galaxy morphology using the NewCluster simulation, which implements a detailed OTF dust model. We generate mock images of NewCluster galaxies under both OTF and fixed DTM models using the radiative transfer code SKIRT, and compare their morphology to JWST observations. We measure morphology indices and use the $G-M_{20}$ test to classify galaxies. We find that the OTF galaxy models exhibit brighter centers and more pronounced bulges than those of the fixed DTM models, resulting in a lower late-type galaxy (LTG) fraction, particularly at high redshifts. This central brightening is linked to a phenomenon we refer to as the DTM cavity, a localized depression in the DTM ratio driven by intense bulge starbursts. Our results highlight the importance of modeling dust evolution in a physically motivated manner, as fixed DTM models fail to capture key morphological features.
title How Dust Models Shape High-z Galaxy Morphology: Insights from the NewCluster Simulation
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2508.18374