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Energy barriers, demons, and minimum energy operation of electronic devices

机译:电子设备的能量屏障,恶魔和最低能耗运行

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摘要

The presence of thermal noise dictates that an energy barrier is needed to preserve a binary state. Therefore, all electronic devices contain at least one energy barrier to control electron flow. The barrier properties determine the operating characteristics of electronic devices. Furthermore, changes in the barrier shape require changes in charge density. Operation of all charge transport devices includes charging/discharging capacitances to change barrier height. We analyze energy dissipation for several schemes of charging capacitors. A basic assumption of Reversible Computing is that the computing system is completely isolated from the thermal bath. An isolated system is a mathematical abstraction never perfectly realized in practice. Errors due to thermal excitations are equivalent to information erasure, and thus computation dissipates energy. Another source of energy dissipation is due to the need of measurement and control. To analyze this side of the problem, the Maxwell's Demon is a useful abstraction. We hold that apparent "energy savings" in models of adiabatic circuits result from neglecting the total energy needed by other parts of the system to implement the circuit.
机译:热噪声的存在表明需要能量屏障来保持二进制状态。因此,所有电子设备都包含至少一个能垒来控制电子流。阻挡性能决定了电子设备的工作特性。此外,势垒形状的改变要求电荷密度的改变。所有电荷传输设备的操作都包括充电/放电电容,以更改势垒高度。我们分析了几种充电电容器方案的能量耗散。可逆计算的基本假设是计算系统与热浴完全隔离。孤立的系统是在实践中从未完美实现的数学抽象。由热激励引起的错误等同于信息擦除,因此计算会消耗能量。能量消耗的另一个来源是由于需要测量和控制。为了分析问题的这一方面,麦克斯韦的恶魔是一个有用的抽象。我们认为,绝热电路模型中明显的“节能”是由于忽略了实现该电路的系统其他部分所需的总能量。

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