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Does a Standalone, “Cold” (Low-Thermal-Noise), Linear Resistor Exist Without Cooling?

机译:独立的,“冷”(低热噪声),存在线性电阻而不冷却?

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摘要

Classical ways of cooling require some of these elements: phase transition, compressor, nonlinearity, valve and/or switch. A recent example is the 2018 patent of Linear Technology Corporation; they utilize the shot noise of a diode to produce a standalone nonlinear resistor that has T/2 noise temperature (about 150K). While such “resistor” can cool its environment when it is AC coupled to a resistor, the thermal cooling effect is only academically interesting. The importance of the invention is of another nature: In low-noise electronics, it is essential to have resistors with low-noise temperature to improve the signal-to-noise ratio. A natural question is raised: can we use a linear system with feedback to cool and, most importantly, to show reduced noise temperature? Exploring this problem, we were able to produce standalone linear resistors showing strongly reduced thermal noise. Our must successful test shows T/100 (about 3K) noise temperature, as if the resistor would have been immersed in liquid helium. We also found that there is an old solution offering similar results utilizing the virtual ground of an inverting amplifier at negative feedback. There, the “cold” resistor is generated at the input of an amplifier. On the other hand, our system generates the “cold” resistance at the output, which can have practical advantages.
机译:经典的冷却方式需要这些元件中的一些:相变,压缩机,非线性,阀门和/或开关。最近的一个例子是2018年线性技术公司专利;它们利用二极管的射击噪声来产生具有T / 2噪声温度(约150k)的独立非线性电阻。虽然这种“电阻”可以在AC耦合到电阻时冷却其环境,但热冷却效果只是学者有趣。本发明的重要性是另一个性质:在低噪声电子器件中,必须具有低噪声温度的电阻,以提高信噪比。提出了一种自然的问题:我们可以使用带有反馈的线性系统来冷却,最重要的是显示降低的噪声温度?探索这一问题,我们能够生产出呈强烈降低的热噪声的独立线性电阻。我们必须成功的测试显示T / 100(约3K)噪声温度,好像电阻器将浸入液氦中。我们还发现,有一个旧解决方案,提供了利用反向放大器的虚拟接地在负反馈下的类似结果。在那里,在放大器的输入处产生“冷”电阻。另一方面,我们的系统在输出处产生“冷”电阻,这可以具有实际优点。

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