Literature DB >> 21848337

Superfast motion of catalytic microjet engines at physiological temperature.

Samuel Sanchez1, Adithya N Ananth, Vladimir M Fomin, Marlitt Viehrig, Oliver G Schmidt.   

Abstract

There is a great interest in reducing the toxicity of the fuel used to self-propel artificial nanomachines. Therefore, a method to increase the efficiency of the conversion of chemicals into mechanical energy is desired. Here, we employed temperature control to increase the efficiency of microjet engines while simultaneously reducing the amount of peroxide fuel needed. At physiological temperatures, i.e. 37 °C, only 0.25% H(2)O(2) is needed to propel the microjets at 140 μm s(-1), which corresponds to three body lengths per second. In addition, at 5% H(2)O(2), the microjets acquire superfast speeds, reaching 10 mm s(-1). The dynamics of motion is altered when the speed is increased; i.e., the motion deviates from linear to curvilinear trajectories. The observations are modeled empirically.

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Year:  2011        PMID: 21848337     DOI: 10.1021/ja205012j

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  24 in total

1.  Microrobotics: Swimmers by design.

Authors:  Igor S Aranson
Journal:  Nature       Date:  2016-03-17       Impact factor: 49.962

2.  Active matter therapeutics.

Authors:  Arijit Ghosh; Weinan Xu; Neha Gupta; David H Gracias
Journal:  Nano Today       Date:  2020-02-27       Impact factor: 20.722

3.  Rolled-up magnetic microdrillers: towards remotely controlled minimally invasive surgery.

Authors:  Wang Xi; Alexander A Solovev; Adithya N Ananth; David H Gracias; Samuel Sanchez; Oliver G Schmidt
Journal:  Nanoscale       Date:  2013-02-21       Impact factor: 7.790

4.  Effect of surfactants on the performance of tubular and spherical micromotors - a comparative study.

Authors:  Juliane Simmchen; Veronika Magdanz; Samuel Sanchez; Sarocha Chokmaviroj; Daniel Ruiz-Molina; Alejandro Baeza; Oliver G Schmidt
Journal:  RSC Adv       Date:  2014-04-14       Impact factor: 3.361

5.  Light-controlled two-dimensional TiO2 plate micromotors.

Authors:  Ying Wang; Zhen Li; Alexander A Solovev; Gaoshan Huang; Yongfeng Mei
Journal:  RSC Adv       Date:  2019-09-17       Impact factor: 4.036

6.  Chemotactic behavior of catalytic motors in microfluidic channels.

Authors:  Larysa Baraban; Stefan M Harazim; Samuel Sanchez; Oliver G Schmidt
Journal:  Angew Chem Int Ed Engl       Date:  2013-04-24       Impact factor: 15.336

7.  Thermal activation of catalytic microjets in blood samples using microfluidic chips.

Authors:  Lluís Soler; Cynthia Martínez-Cisneros; Anka Swiersy; Samuel Sánchez; Oliver G Schmidt
Journal:  Lab Chip       Date:  2013-11-21       Impact factor: 6.799

8.  Carbon nanotube-liposome supramolecular nanotrains for intelligent molecular-transport systems.

Authors:  Eijiro Miyako; Kenji Kono; Eiji Yuba; Chie Hosokawa; Hidenori Nagai; Yoshihisa Hagihara
Journal:  Nat Commun       Date:  2012       Impact factor: 14.919

9.  Poisoning of bubble propelled catalytic micromotors: the chemical environment matters.

Authors:  Guanjia Zhao; Samuel Sanchez; Oliver G Schmidt; Martin Pumera
Journal:  Nanoscale       Date:  2013-04-07       Impact factor: 7.790

10.  Trapping self-propelled micromotors with microfabricated chevron and heart-shaped chips.

Authors:  Laura Restrepo-Pérez; Lluís Soler; Cynthia S Martínez-Cisneros; Samuel Sánchez; Oliver G Schmidt
Journal:  Lab Chip       Date:  2014-03-19       Impact factor: 6.799

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