DNA折纸
材料科学
扭矩
纳米技术
磁镊
磁场
磁性纳米粒子
夹紧
磁化
磁各向异性
执行机构
磁铁
纳米尺度
磁矩
纳米结构
蒙特卡罗方法
各向异性
纳米生物技术
模板
旋转(数学)
DNA纳米技术
磁铁之间的作用力
生物磁学
工作(物理)
人口
磁珠
磁畴
自旋电子学
磁性
磁性齿轮
铁磁性
旋转磁场
凝聚态物理
作者
Lennart J. K. Weiß,Florian Rothfischer,Yihao Wang,Christoph Pauer,Xin Yin,Kevin Lang,Rabia Amin,Thomas Tsalos,Susanne Kempter,Jan Lipfert,Tim Liedl,Friedrich C. Simmel,Joe Tavacoli,Aidin Lak
摘要
Self-assembled DNA nanostructures show great promise as functional devices, highly configurable materials, and in nanorobotics. Magnetic control provides a powerful and broadly applicable actuation mechanism due to its programmability, compatibility with biological entities, and orthogonality to chemical or electrical stimuli. Here we demonstrate magnetic nanoactuators by leveraging the unique site-specificity of DNA origami to assemble magnetic nanocubes with high magnetization and magnetic anisotropy on high-aspect ratio DNA origami bundles. We trace and control 100s of our DNA origami nanorotors at the single-rotor level and demonstrate their magnetic clamping and controlled rotation under uniform and rotating magnetic fields. By varying the population and inter-particle spacing of the nanocubes, magnetic torque values on the order of 10-100 pN nm are calculated at field strengths < 10 mT. Monte Carlo simulations reveal that the assembly of nanocubes on DNA origami rotors leads to collective magnetic properties, with numerically estimated torque values in good agreement with the experiments. Our work demonstrates a proof-of-concept of nanoscale magnetic actuators for potential uses as programmable torque nano-probes and in nanorobotics.
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