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			<titleStmt><title level='a'>Can Broad-line Region Line Profile Shape Improve Single-epoch Black Hole Mass Estimates?</title></titleStmt>
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				<publisher>The Astrophysical Journal</publisher>
				<date>06/10/2026</date>
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				<bibl> 
					<idno type="par_id">10698976</idno>
					<idno type="doi">10.3847/1538-4357/ae69cf</idno>
					<title level='j'>The Astrophysical Journal</title>
<idno>0004-637X</idno>
<biblScope unit="volume">1004</biblScope>
<biblScope unit="issue">2</biblScope>					

					<author>Lizvette Villafaña</author><author>Tommaso Treu</author><author>Shu Wang</author><author>Misty C Bentz</author><author>Brendon J Brewer</author><author>Aaron J Barth</author><author>Jong-Hak Woo</author><author>Matthew A Malkan</author><author>Vardha N Bennert</author><author>Vivian U</author>
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			<abstract><ab><![CDATA[<title>Abstract</title> <p>The virial coefficient (<italic>f</italic>), which is meant to encapsulate broad-line region (BLR) geometry and kinematics, remains one of the largest sources of systematic uncertainty in black hole mass estimates for active galactic nuclei (AGNs). While the use of a sample average 〈<italic>f</italic>〉 enables black hole mass estimates across large samples and cosmological distances, individual AGNs may deviate from this average due to differences in BLR structure and viewing angle. In previous work, we reported marginal evidence for a correlation between<italic>f</italic>and the shape of the broad H<italic>β</italic>emission line,<inline-formula><tex-math><CDATA/></tex-math><math overflow='scroll'><msub><mrow><mi>log</mi></mrow><mrow><mn>10</mn></mrow></msub><mo stretchy='false'>(</mo><mi mathvariant='normal'>FWHM</mi><mo>/</mo><mi>σ</mi><mo stretchy='false'>)</mo></math></inline-formula>. In this work, we update our sample to include 10 new sources with<monospace>CARAMEL</monospace>BLR dynamical modeling, increasing both the black hole mass range and statistical power of our analysis. We find marginal evidence for a correlation between<italic>f</italic>and<inline-formula><tex-math><CDATA/></tex-math><math overflow='scroll'><msub><mrow><mi>log</mi></mrow><mrow><mn>10</mn></mrow></msub><mo stretchy='false'>(</mo><mi mathvariant='normal'>FWHM</mi><mo>/</mo><mi>σ</mi><mo stretchy='false'>)</mo></math></inline-formula>, with a slope and intrinsic scatter consistent with previous results. The confirmation of this trend across a larger sample further supports the idea that line profile shape may reflect BLR properties in a way that directly impacts<italic>f</italic>. If confirmed with future BLR dynamical modeling of sources within a wider range of<inline-formula><tex-math><CDATA/></tex-math><math overflow='scroll'><msub><mrow><mi>log</mi></mrow><mrow><mn>10</mn></mrow></msub><mo stretchy='false'>(</mo><mi mathvariant='normal'>FWHM</mi><mo>/</mo><mi>σ</mi><mo stretchy='false'>)</mo></math></inline-formula>, this relationship could enable empirical estimates of the virial coefficient and improve single-epoch black hole mass estimates across cosmic time.</p>]]></ab></abstract>
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