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Optimization and performance of H2RG detectors and SIDECAR ASICs for SWIMS

机译:用于SWIMS的H2RG检测器和SIDECAR ASIC的优化和性能

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SWIMS (Simultaneous-color Wide-field Infrared Multi-object Spectrograph) is one of the first-generation instruments for the University of Tokyo Atacama Observatory 6.5-m telescope which is now under construction in northern Chile. This instrument incorporates 4 (and maximum 8 in future) HgCdTe HAWAII-2RG detectors, from which images are acquired by SIDECAR ASICs. Characterization and validation of performances of these detectors are carried out using a test dewar at 80K using liquid nitrogen. Bias voltages such as reset level and substrate level and reference voltages are optimized to minimize readout noise with keeping output levels within proper range for ADC inputs. ADU-electron conversion gain g_c is measured by photon-transfer method, incorporating IPC (Inter-Pixel Capacitance) correction. IPC coefficient is measured to be about 1.4%, which result in overestimation of g_c by about 13%. After this correction, g_c is measured to be about 2.4e~-/ADU with normal preamplifier gain setting in the ASICs. Correlated double sampling (CDS) readout noise is about 16 e~-rms, and is reduced to about 4 e~- rms by Multi Fowler sampling. The noise is different by 30% at most between channels of the ASIC. We also separate noise sources into those come from detector pixels, from a flat cable between the detector and the ASIC, and from preamps and from ADCs, and found that the detector pixels are the major sources of readout noise. Fitting of linearity curve is also obtained. The next step is to study the effects of driving multiple detectors to the performances and to install the detectors into SWIMS.
机译:SWIMS(同色宽视场红外多目标光谱仪)是东京大学阿塔卡马天文台6.5米望远镜的第一代仪器之一,目前正在智利北部建造。该仪器包含4个(将来最多8个)HgCdTe HAWAII-2RG检测器,SIDECAR ASIC从中获取图像。这些检测器的性能表征和验证是使用液氮在80K的杜瓦瓶中进行的。优化了偏置电压,例如复位电平和衬底电平以及参考电压,以将读出噪声降至最低,同时将输出电平保持在ADC输入的适当范围内。 ADU电子转换增益g_c是通过结合了IPC(像素间电容)校正的光子传输法测量的。 IPC系数约为1.4%,这导致g_c高估了约13%。校正之后,使用ASIC中的常规前置放大器增益设置,可以测量到g_c约为2.4e〜// ADU。相关的双采样(CDS)读出噪声约为16 e-rms,通过Multi Fowler采样可将噪声降至约4 erms。 ASIC的通道之间的噪声最多相差30%。我们还将噪声源分为检测器像素,检测器与ASIC之间的扁平电缆,前置放大器和ADC噪声源,并发现检测器像素是读出噪声的主要来源。还获得了线性曲线的拟合。下一步是研究驱动多个检测器对性能的影响,并将检测器安装到SWIMS中。

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