FAUST XXIV. Large dust grains in the protostellar outflow cavity walls of the Class I binary L1551 IRS5
G. Sabatini, E. Bianchi, C. J. Chandler, L. Cacciapuoti, L. Podio, M. J. Maureira, C. Codella, C. Ceccarelli, N. Sakai, L. Testi, C. Toci, B. Svoboda, T. Sakai, M. Bouvier, P. Caselli, N. Cuello, M. De Simone, I. J’imenez-Serra, D. Johnstone, L. Loinard, Z. E. Zhang, S. Yamamoto
arXiv:2505.13596v1 Announce Type: new
Abstract: Planet formation around young stars requires the growth of interstellar dust grains from mm-sized particles to km-sized planetesimals. Numerical simulations have shown that large ($sim$mm-sized) grains found in the inner envelope of young protostars could be lifted from the disc via winds. However we are still lacking unambiguous evidence for large grains in protostellar winds/outflows. We investigate dust continuum emission in the envelope of the Class I binary L1551 IRS5 in the Taurus molecular cloud, aiming to identify observational signatures of grain growth, such as variations in the dust emissivity index ($beta_{rm mm}$). In this context, we present new, high-angular resolution (50 au), observations of thermal dust continuum emission at 1.3 mm and 3 mm in the envelope ($sim$3000 au) of L1551 IRS5 , obtained as part of the ALMA-FAUST Large Program. We analyse dust emission along the cavity walls of the CO outflow, extended up to $sim$1800 au. We find an H$_2$ volume density $>2times10^5$ cm$^{-3}$, a dust mass of $sim$58 M$_oplus$, and $beta_{rm mm}$arXiv:2505.13596v1 Announce Type: new
Abstract: Planet formation around young stars requires the growth of interstellar dust grains from mm-sized particles to km-sized planetesimals. Numerical simulations have shown that large ($sim$mm-sized) grains found in the inner envelope of young protostars could be lifted from the disc via winds. However we are still lacking unambiguous evidence for large grains in protostellar winds/outflows. We investigate dust continuum emission in the envelope of the Class I binary L1551 IRS5 in the Taurus molecular cloud, aiming to identify observational signatures of grain growth, such as variations in the dust emissivity index ($beta_{rm mm}$). In this context, we present new, high-angular resolution (50 au), observations of thermal dust continuum emission at 1.3 mm and 3 mm in the envelope ($sim$3000 au) of L1551 IRS5 , obtained as part of the ALMA-FAUST Large Program. We analyse dust emission along the cavity walls of the CO outflow, extended up to $sim$1800 au. We find an H$_2$ volume density $>2times10^5$ cm$^{-3}$, a dust mass of $sim$58 M$_oplus$, and $beta_{rm mm}$
2025-05-21