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5.7 A 29nW bandgap reference circuit

机译:5.7 A 29NW带隙参考电路

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Bandgap references (BGRs) are widely used to generate a temperature-insensitive reference voltage determined by the silicon bandgap. the BGR generally utilizes PN diodes to generate both of proportional-to-absolute-temperature (PTAT) and complementary-to-absolute-temperature (CTAT) quantities and combines them to eliminate the temperature dependency. Though the BGR provides a robust voltage or current reference with insensitivity to process, voltage and temperature variations that is superior to CMOS-only reference circuits, it has received little attention in ultra-low-power (ULP) sensor applications. While CMOS-only reference circuits have recently demonstrated nanowatt power consumption, BGR approaches still have two critical factors to preventing nanowatt consumption. One is that PTAT generation assumes sufficient forward bias, VD, of the PN junction to allow e to be much larger than 1 in the temperature range of interest, where n and VT (=kT/q) represent the ideality factor and the thermal voltage, respectively. In addition, the PTAT generation requires a start-up circuit to prevent the circuit from resting at the undesirable zero-bias condition. Since the start-up circuit utilizes a resistive voltage division between power rails, it consumes non-zero DC current, which must be larger than leakage current in order to ensure stable start-up operation. These two requirements for PTAT generation limit the use of BGRs in nanowatt ULP applications.
机译:带隙参考(BGR)被广泛用于产生由硅带隙确定的温度不敏感的参考电压。 BGR通常利用PN二极管产生比例到绝对温度(PTAT)和互补 - 绝对温度(CTAT)量,并结合它们以消除温度依赖性。虽然BGR提供了强大的电压或电流参考,但对仅CMOS的CMOS参考电路优于处理,电压和温度变化,但它在超低功耗(ULP)传感器应用中收到了很少的关注。虽然最近CMOS的参考电路最近展示了Nanowatt功耗,但BGR方法仍然有两个关键因素来防止纳米瓦消耗。一个是,PTAT的产生假定PN结的足够的正向偏压Vd,以允许E在感兴趣的温度范围内大于1,其中n和Vt(= kt / q)表示理想因子和热电压, 分别。另外,PTAT生成需要启动电路以防止电路在不希望的零偏置条件下搁置。由于启动电路利用电源轨之间的电阻电压分割,因此它消耗非零直流电流,必须大于漏电流,以确保稳定的启动操作。这两种对PTAT产生的要求限制了BGR在纳瓦图附有ULP应用中的使用。

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