Physical Biology Center for Ultrafast Science and Technology, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, CA 91125, USA.
Science. 2010 Jun 25;328(5986):1668-73. doi: 10.1126/science.1190470.
Electron tomography provides three-dimensional (3D) imaging of noncrystalline and crystalline equilibrium structures, as well as elemental volume composition, of materials and biological specimens, including those of viruses and cells. We report the development of 4D electron tomography by integrating the fourth dimension (time resolution) with the 3D spatial resolution obtained from a complete tilt series of 2D projections of an object. The different time frames of tomograms constitute a movie of the object in motion, thus enabling studies of nonequilibrium structures and transient processes. The method was demonstrated using carbon nanotubes of a bracelet-like ring structure for which 4D tomograms display different modes of motion, such as breathing and wiggling, with resonance frequencies up to 30 megahertz. Applications can now make use of the full space-time range with the nanometer-femtosecond resolution of ultrafast electron tomography.
电子断层扫描技术为非晶态和晶态平衡结构以及材料和生物样本的元素体积组成提供了三维(3D)成像,包括病毒和细胞。我们通过将第四维(时间分辨率)与从物体的完整倾斜系列二维(2D)投影中获得的 3D 空间分辨率相结合,报告了 4D 电子断层扫描技术的发展。断层扫描的不同时间帧构成了运动物体的电影,从而能够研究非平衡结构和瞬态过程。该方法使用具有手镯状环结构的碳纳米管进行了演示,4D 断层扫描显示了不同的运动模式,例如呼吸和摆动,其共振频率高达 30 兆赫兹。现在,应用程序可以利用超快电子断层扫描的纳米飞秒分辨率的全时空范围。