Author/Authors :
Hattori، نويسنده , , Kaori and Arnold، نويسنده , , Kam and Barron، نويسنده , , Darcy and Dobbs، نويسنده , , Matt and de Haan، نويسنده , , Tijmen and Harrington، نويسنده , , Nicholas and Hasegawa، نويسنده , , Masaya and Hazumi، نويسنده , , Masashi and Holzapfel، نويسنده , , William L. and Keating، نويسنده , , Brian and Lee، نويسنده , , Adrian T. and Morii، نويسنده , , Hideki and Myers، نويسنده , , Michael J. and Smecher، نويسنده , , Graeme and Suzuki، نويسنده , , Aritoki and Tomaru، نويسنده , , Takayuki، نويسنده ,
Abstract :
The POLARBEAR-2 Cosmic Microwave Background (CMB) experiment aims to observe B-mode polarization with high sensitivity to explore gravitational lensing of CMB and inflationary gravitational waves. POLARBEAR-2 is an upgraded experiment based on POLARBEAR-1, which had first light in January 2012. For POLARBEAR-2, we will build a receiver that has 7588 Transition Edge Sensor (TES) bolometers coupled to two-band (95 and 150 GHz) polarization-sensitive antennas. For the large arrayʹs readout, we employ digital frequency-domain multiplexing and multiplex 32 bolometers through a single superconducting quantum interference device (SQUID). An 8-bolometer frequency-domain multiplexing readout has been deployed with the POLARBEAR-1 experiment. Extending that architecture to 32 bolometers requires an increase in the bandwidth of the SQUID electronics to 3 MHz. To achieve this increase in bandwidth, we use Digital Active Nulling (DAN) on the digital frequency multiplexing platform. In this paper, we present requirements and improvements on parasitic inductance and resistance of cryogenic wiring and capacitors used for modulating bolometers. These components are problematic above 1 MHz. We also show that our system is able to bias a bolometer in its superconducting transition at 3 MHz.
Keywords :
Digital feedback , Frequency-domain multiplexing , POLARBEAR-2 , cosmic microwave background , TES bolometer