Sub‐Nanogram Resolution Measurement of Inertial Mass and Density Using Magnetic‐Field‐Guided Bubble Microthruster

Author:

Wang Leilei1,Sheng Minjia2,Chen Li2,Yang Fengchang1,Li Chenlu2,Li Hangyu13,Nie Pengcheng13,Lv Xinxin4,Guo Zheng4,Cao Jialing4,Wang Xiaohuan1,Li Long1,Hu Anthony L.5,Guan Dongshi13,Du Jing4,Cui Haihang2,Zheng Xu1ORCID

Affiliation:

1. State Key Laboratory of Nonlinear Mechanics Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences Beijing 100190 China

2. School of Building Services Science and Engineering Xi'an University of Architecture and Technology Xi'an 710055 China

3. School of Engineering Science University of Chinese Academy of Sciences Beijing 100049 China

4. Key Laboratory for Biomechanics and Mechanobiology of Ministry of Education Beijing Advanced Innovation Center for Biomedical Engineering School of Biological Science and Medical Engineering Beihang University Beijing 100083 China

5. The High School Affiliated to Renmin University of China Beijing 100080 China

Abstract

AbstractArtificial micro/nanomotors using active particles hold vast potential in applications such as drug delivery and microfabrication. However, upgrading them to micro/nanorobots capable of performing precise tasks with sophisticated functions remains challenging. Bubble microthruster (BMT) is introduced, a variation of the bubble‐driven microrobot, which focuses the energy from a collapsing microbubble to create an inertial impact on nearby target microparticles. Utilizing ultra‐high‐speed imaging, the microparticle mass and density is determined with sub‐nanogram resolution based on the relaxation time characterizing the microparticle's transient response. Master curves of the BMT method are shown to be dependent on the viscosity of the solution. The BMT, controlled by a gamepad with magnetic‐field guidance, precisely manipulates target microparticles, including bioparticles. Validation involves measuring the polystyrene microparticle mass and hollow glass microsphere density, and assessing the mouse embryo mass densities. The BMT technique presents a promising chip‐free, real‐time, highly maneuverable strategy that integrates bubble microrobot‐based manipulation with precise bioparticle mass and density detection, which can facilitate microscale bioparticle characterizations such as embryo growth monitoring.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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