Sunil R. Golwala, Andrew D. Beyer, Daniel Cunnane, Peter K. Day, Fabien Defrance, Clifford F. Frez, Xiaolan Huang, Junhan Kim, Jean-Marc Martin, Jack Sayers, Shibo Shu, Shiling Yu
{"title":"NEW-MUSIC: The Next-generation Extended-Wavelength Multiband Sub/millimeter Inductance Camera","authors":"Sunil R. Golwala, Andrew D. Beyer, Daniel Cunnane, Peter K. Day, Fabien Defrance, Clifford F. Frez, Xiaolan Huang, Junhan Kim, Jean-Marc Martin, Jack Sayers, Shibo Shu, Shiling Yu","doi":"arxiv-2409.02307","DOIUrl":null,"url":null,"abstract":"The Next-generation Extended Wavelength-MUltiband Sub/millimeter Inductance\nCamera (NEW-MUSIC) on the Leighton Chajnantor Telescope (LCT) will be a\nfirst-of-its-kind, six-band, transmillimeter-wave (\"trans-mm\") polarimeter\ncovering 2.4 octaves of spectral bandwidth to open a new window on the trans-mm\ntime-domain frontier, in particular new frontiers in energy, density, time, and\nmagnetic field. NEW-MUSIC's broad spectral coverage will also enable the use of\nthe Sunyaev-Zeldovich effects to study accretion, feedback, and dust content in\nthe hot gaseous haloes of galaxies and galaxy clusters. Six-band spectral\nenergy distributions, with polarization information, will yield new insights\ninto stellar and planetary nurseries. NEW-MUSIC will employ hierarchical,\nphased arrays of polarization-sensitive superconducting slot-dipole antennas,\ncoupled to photolithographic bandpass filters, to nearly optimally populate\nLCT's 14' field-of-view with six spectral bands over 80-420 GHz (1:5.25\nspectral dynamic range; 2.4 octaves). Light will be routed to Al or AlMn\nmicrostripline-coupled, parallel-plate capacitor, lumped-element kinetic\ninductance detectors (MS-PPC-LEKIDs), an entirely new KID architecture that\nsubstantially enhances design flexibility while providing background-limited\nperformance. Innovative, wide-bandwidth, etched silicon structures will be used\nto antireflection-treat the back-illuminated focal plane. NEW-MUSIC will\ncost-effectively reuse much of the MUSIC instrument, initially deploying a\nquarter-scale focal plane capable of the bulk of NEW-MUSIC science followed\nlater by a full-FoV focal plane needed for NEW-MUSIC wide-area survey science.","PeriodicalId":501163,"journal":{"name":"arXiv - PHYS - Instrumentation and Methods for Astrophysics","volume":"33 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Instrumentation and Methods for Astrophysics","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.02307","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The Next-generation Extended Wavelength-MUltiband Sub/millimeter Inductance
Camera (NEW-MUSIC) on the Leighton Chajnantor Telescope (LCT) will be a
first-of-its-kind, six-band, transmillimeter-wave ("trans-mm") polarimeter
covering 2.4 octaves of spectral bandwidth to open a new window on the trans-mm
time-domain frontier, in particular new frontiers in energy, density, time, and
magnetic field. NEW-MUSIC's broad spectral coverage will also enable the use of
the Sunyaev-Zeldovich effects to study accretion, feedback, and dust content in
the hot gaseous haloes of galaxies and galaxy clusters. Six-band spectral
energy distributions, with polarization information, will yield new insights
into stellar and planetary nurseries. NEW-MUSIC will employ hierarchical,
phased arrays of polarization-sensitive superconducting slot-dipole antennas,
coupled to photolithographic bandpass filters, to nearly optimally populate
LCT's 14' field-of-view with six spectral bands over 80-420 GHz (1:5.25
spectral dynamic range; 2.4 octaves). Light will be routed to Al or AlMn
microstripline-coupled, parallel-plate capacitor, lumped-element kinetic
inductance detectors (MS-PPC-LEKIDs), an entirely new KID architecture that
substantially enhances design flexibility while providing background-limited
performance. Innovative, wide-bandwidth, etched silicon structures will be used
to antireflection-treat the back-illuminated focal plane. NEW-MUSIC will
cost-effectively reuse much of the MUSIC instrument, initially deploying a
quarter-scale focal plane capable of the bulk of NEW-MUSIC science followed
later by a full-FoV focal plane needed for NEW-MUSIC wide-area survey science.