An ultra wide-band, high-sensitivity Q-band receiver for single-dish telescopes, eQ: rest frequency determination of CCS ($J_N$ = $4_3$-$3_2$) and SO ($J_N$ = $1_0$-$0_1$), and high-redshift CO ($J$ = 1-0) detection

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Main Authors: Nakamura, Fumitaka, Chiong, Chau-Ching, Taniguchi, Kotomi, Chien, Chen, Ho, Chin-Ting, Hwang, Yuh-Jing, Yeh, You-Ting, Shimoikura, Tomomi, Yamasaki, Yasumasa, Liu, Sheng-Yuan, Hirano, Naomi, Lai, Shih-Ping, Nishimura, Atsushi, Kawabe, Ryohei, Dobashi, Kazuhito, Fujii, Yasunori, Yonekura, Yoshinori, Ogawa, Hideo, Nguyen-Luong, Quang
Format: Preprint
Published: 2024
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author Nakamura, Fumitaka
Chiong, Chau-Ching
Taniguchi, Kotomi
Chien, Chen
Ho, Chin-Ting
Hwang, Yuh-Jing
Yeh, You-Ting
Shimoikura, Tomomi
Yamasaki, Yasumasa
Liu, Sheng-Yuan
Hirano, Naomi
Lai, Shih-Ping
Nishimura, Atsushi
Kawabe, Ryohei
Dobashi, Kazuhito
Fujii, Yasunori
Yonekura, Yoshinori
Ogawa, Hideo
Nguyen-Luong, Quang
author_facet Nakamura, Fumitaka
Chiong, Chau-Ching
Taniguchi, Kotomi
Chien, Chen
Ho, Chin-Ting
Hwang, Yuh-Jing
Yeh, You-Ting
Shimoikura, Tomomi
Yamasaki, Yasumasa
Liu, Sheng-Yuan
Hirano, Naomi
Lai, Shih-Ping
Nishimura, Atsushi
Kawabe, Ryohei
Dobashi, Kazuhito
Fujii, Yasunori
Yonekura, Yoshinori
Ogawa, Hideo
Nguyen-Luong, Quang
contents We report on the development and commissioning of a new Q-band receiver for the Nobeyama 45-m telescope, covering 30--50 GHz with a receiver noise temperature of about 15 K. We name it eQ (extended Q-band) receiver. The system noise temperatures for observations are measured to be $\sim$ 30 K at 33 GHz and $\sim$ 75 K at 45 GHz. The Half-Power-Beam-Width (HPBW) is around 38\arcsec at 43 GHz. To enhance the observation capability, we tested the smoothed bandpass calibration technique and demonstrated the observation time can be significantly reduced compared to the standard position switch technique. The wide-bandwidth capability of this receiver provides precise determination of rest frequencies for molecular transitions with an accuracy of a few kHz through simultaneous observations of multiple transitions. Particularly, we determined the rest frequency of SO ($J_N$ = $1_0$--$0_1$) to be 30.001542 GHz, along with the rest frequency of CCS ($J_N$ = $4_3$--$3_2$) being 45.379033 GHz, adopting CCS ($J_N$ = $3_2$--$2_1$) at 33.751370 GHz as a reference line. The SO profile shows a double peak shape at the Cyanopolyyne Peak (CP) position of the Taurus Molecular Cloud-1 (TMC-1). The SO peaks coincide well with the CCS sub-components located near the outer parts of the TMC-1 filament. We interpret that the gravitational infall of TMC-1 generates shocks which enhance the SO abundance. The TMC-1 map shows that carbon-chain molecules are more abundant in the southern part of the filament, whereas SO is more abundant in the northern part. The eQ's excellent sensitivity allowed us to detect faint CO ($J$ = 1--0) spectra from the high-redshift object at a redshift of 2.442. Our receiver is expected to open new avenues for high-sensitivity molecular line observations in the Q-band.
format Preprint
id arxiv_https___arxiv_org_abs_2405_09140
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An ultra wide-band, high-sensitivity Q-band receiver for single-dish telescopes, eQ: rest frequency determination of CCS ($J_N$ = $4_3$-$3_2$) and SO ($J_N$ = $1_0$-$0_1$), and high-redshift CO ($J$ = 1-0) detection
Nakamura, Fumitaka
Chiong, Chau-Ching
Taniguchi, Kotomi
Chien, Chen
Ho, Chin-Ting
Hwang, Yuh-Jing
Yeh, You-Ting
Shimoikura, Tomomi
Yamasaki, Yasumasa
Liu, Sheng-Yuan
Hirano, Naomi
Lai, Shih-Ping
Nishimura, Atsushi
Kawabe, Ryohei
Dobashi, Kazuhito
Fujii, Yasunori
Yonekura, Yoshinori
Ogawa, Hideo
Nguyen-Luong, Quang
Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
Solar and Stellar Astrophysics
We report on the development and commissioning of a new Q-band receiver for the Nobeyama 45-m telescope, covering 30--50 GHz with a receiver noise temperature of about 15 K. We name it eQ (extended Q-band) receiver. The system noise temperatures for observations are measured to be $\sim$ 30 K at 33 GHz and $\sim$ 75 K at 45 GHz. The Half-Power-Beam-Width (HPBW) is around 38\arcsec at 43 GHz. To enhance the observation capability, we tested the smoothed bandpass calibration technique and demonstrated the observation time can be significantly reduced compared to the standard position switch technique. The wide-bandwidth capability of this receiver provides precise determination of rest frequencies for molecular transitions with an accuracy of a few kHz through simultaneous observations of multiple transitions. Particularly, we determined the rest frequency of SO ($J_N$ = $1_0$--$0_1$) to be 30.001542 GHz, along with the rest frequency of CCS ($J_N$ = $4_3$--$3_2$) being 45.379033 GHz, adopting CCS ($J_N$ = $3_2$--$2_1$) at 33.751370 GHz as a reference line. The SO profile shows a double peak shape at the Cyanopolyyne Peak (CP) position of the Taurus Molecular Cloud-1 (TMC-1). The SO peaks coincide well with the CCS sub-components located near the outer parts of the TMC-1 filament. We interpret that the gravitational infall of TMC-1 generates shocks which enhance the SO abundance. The TMC-1 map shows that carbon-chain molecules are more abundant in the southern part of the filament, whereas SO is more abundant in the northern part. The eQ's excellent sensitivity allowed us to detect faint CO ($J$ = 1--0) spectra from the high-redshift object at a redshift of 2.442. Our receiver is expected to open new avenues for high-sensitivity molecular line observations in the Q-band.
title An ultra wide-band, high-sensitivity Q-band receiver for single-dish telescopes, eQ: rest frequency determination of CCS ($J_N$ = $4_3$-$3_2$) and SO ($J_N$ = $1_0$-$0_1$), and high-redshift CO ($J$ = 1-0) detection
topic Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2405.09140