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Control of force through feedback in small driven systems

机译:通过小型驱动系统中的反馈来控制力

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Controlling a time-dependent force applied to single molecules or colloidal particles is crucial for many types of experiments. Since in optical tweezers the primary controlled variable is the position of the trap, imposing a target force requires an active feedback process. We analyze this feedback process for the paradigmatic case of a nonequilibrium steady state generated by a dichotomous force protocol, first theoretically for a colloidal particle in a harmonic trap and then with both simulations and experiments for a long DNA hairpin. For the first setup, we find there is an optimal feedback gain separating monotonic from oscillatory response, whereas a too strong feedback leads to an instability. For the DNA molecule, reaching the target force requires substantial feedback gain since weak feedback cannot overcome the tendency to relax towards the equilibrium force.
机译:对于许多类型的实验,控制施加到单个分子或胶体颗粒上的随时间变化的力至关重要。由于在光镊中,主要的控制变量是陷阱的位置,因此施加目标力需要主动的反馈过程。我们分析由二分力协议生成的非平衡稳态的典型情况的这种反馈过程,首先是理论上针对谐波陷阱中的胶体粒子,然后是长DNA发夹的模拟和实验。对于第一个设置,我们发现有一个最佳的反馈增益将单调的振动响应分开,而过强的反馈会导致不稳定。对于DNA分子,达到目标力需要大量的反馈增益,因为弱反馈无法克服趋向于平衡力的趋势。

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