Investigating biological and synthetic nanoscopic species in liquids, at the ultimate resolution of single entity, is important in diverse fields. Progress has been made, but significant barriers need to be overcome such as the need for intense fields, the lack of versatility in operating conditions and the limited functionality in solutions of high ionic strength for biological applications. Here, we demonstrate switchable electrokinetic nanovalving able to confine and guide single nano-objects, including macromolecules, with sizes down to around 10 nanometres, in a lab-on-chip environment. The nanovalves are based on spatiotemporal tailoring of the potential energy landscape of nano-objects using an electric field, modulated collaborative...
Nanofludic devices provide a great platform for single molecular analysis. The unique phenomena in n...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2007.Includ...
Includes bibliographical references.1. Introduction -- 2. Basic principles and theory -- 3. Nanochan...
Investigating biological and synthetic nanoscopic species in liquids, at the ultimate resolution of ...
Understanding and controlling the individual behavior of nanoscopic matter in liquids, the environme...
Since the pioneering studies on single ion-channel recordings in 1976, single molecule methods have...
Solid state nanopores are single-molecular devices governed by nanoscale physics with a broad potent...
Nanoparticles have unique properties that can be beneficial in fields ranging from quantum informati...
Materials that take advantage of the exceptional properties of nano-meter sized aggregates of atoms ...
Lab-on-a-Chip (LOC) is a new technology focused on analyzing and controlling flows of fluids, ions, ...
Noninvasive manipulation of nanoscopic species in liquids has attracted considerable attention due t...
The genesis for this topical review stems from the interdisciplinary Biointerfaces International con...
The ability to accurately control micro- and nano-particles in a liquid is fundamentally useful for ...
Micro- and nanopillar chips are widely used to separate and enrich biomolecules, such as DNA, RNA, p...
Single-molecule detection schemes offer powerful means to overcome static and dynamic heterogeneity ...
Nanofludic devices provide a great platform for single molecular analysis. The unique phenomena in n...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2007.Includ...
Includes bibliographical references.1. Introduction -- 2. Basic principles and theory -- 3. Nanochan...
Investigating biological and synthetic nanoscopic species in liquids, at the ultimate resolution of ...
Understanding and controlling the individual behavior of nanoscopic matter in liquids, the environme...
Since the pioneering studies on single ion-channel recordings in 1976, single molecule methods have...
Solid state nanopores are single-molecular devices governed by nanoscale physics with a broad potent...
Nanoparticles have unique properties that can be beneficial in fields ranging from quantum informati...
Materials that take advantage of the exceptional properties of nano-meter sized aggregates of atoms ...
Lab-on-a-Chip (LOC) is a new technology focused on analyzing and controlling flows of fluids, ions, ...
Noninvasive manipulation of nanoscopic species in liquids has attracted considerable attention due t...
The genesis for this topical review stems from the interdisciplinary Biointerfaces International con...
The ability to accurately control micro- and nano-particles in a liquid is fundamentally useful for ...
Micro- and nanopillar chips are widely used to separate and enrich biomolecules, such as DNA, RNA, p...
Single-molecule detection schemes offer powerful means to overcome static and dynamic heterogeneity ...
Nanofludic devices provide a great platform for single molecular analysis. The unique phenomena in n...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2007.Includ...
Includes bibliographical references.1. Introduction -- 2. Basic principles and theory -- 3. Nanochan...