Insights into fluidic endogenous magnetism and magnetic monopoles from a liquid metal droplet machine

Ying-Xin Zhou , Jia-Sheng Zu , Jing Liu

Soft Science ›› 2021, Vol. 1 ›› Issue (3) : 15

PDF
Soft Science ›› 2021, Vol. 1 ›› Issue (3) :15 DOI: 10.20517/ss.2021.16
Research Article

Insights into fluidic endogenous magnetism and magnetic monopoles from a liquid metal droplet machine

Author information +
History +
PDF

Abstract

Magnetism and magnetic monopoles are among the most classical issues in physics. Conventional magnets are generally composed of rigid materials and may face challenges in extreme situations. Here, as an alternative to rigid magnets, we propose, for the first time, the generation of fluidic endogenous magnetism and construct a magnetic monopole through tuning with a liquid metal machine. Based on theoretical interpretation and conceptual experimental observations, we illustrate that when liquid metals, such as gallium alloy, in a solution rotate under electrical actuation, they form an endogenous magnetic field inside. This explains the phenomenon where two such discrete metal droplets can easily fuse together, indicating their reciprocal attraction via the N and S poles. Furthermore, we reveal that a self-fueled liquid metal motor also runs as an endogenous fluidic magnet owing to the electromagnetic homology. When aluminum is added to liquid gallium in solution, it forms a spin motor and dynamically variable charge distribution that produces endogenous magnetism inside. This explains the common phenomena where reflective collision and attractive fusion between running liquid metal motors occur, which are partially caused by the dynamic adjustment of their N and S polarities, respectively. On this basis, more experimental approaches capable of generating dynamic electrical fields also work for the same target. Finally, we propose that such a fluidic endogenous magnet could lead to a magnetic monopole and four technical routes to realize this are suggested. The first involves matching the interior flow of liquid metal machines. The second is the superposition between an external electric effect and the magnetic field. The third route involves composite construction between magnetic particles and a liquid metal spin motor. Finally, chemical methods, such as via galvanic cell reactions, are proposed. Overall, the present theory and identified experimental evidence illustrate the role of a liquid metal machine as a fluidic endogenous magnet and highlight promising methods for the realization of magnetic monopoles. A group of unconventional magnetoelectric devices and applications could therefore be possible in the near future.

Keywords

Fluidic magnet / magnetic monopoles / spin liquid metal / endogenous magnetism / droplet machine / self-fueled motor

Cite this article

Download citation ▾
Ying-Xin Zhou, Jia-Sheng Zu, Jing Liu. Insights into fluidic endogenous magnetism and magnetic monopoles from a liquid metal droplet machine. Soft Science, 2021, 1(3): 15 DOI:10.20517/ss.2021.16

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Schneider FRN,Podsiadlowski P.Stellar mergers as the origin of magnetic massive stars.Nature2019;574:211-4

[2]

Hilger A,Kardjilov N,Markötter H.Tensorial neutron tomography of three-dimensional magnetic vector fields in bulk materials.Nat Commun2018;9:4023 PMCID:PMC6168513

[3]

Ma K.Liquid metal cooling in thermal management of computer chips.Front Energy Power Eng China2007;1:384-402

[4]

Jiménez-Martínez R,Rosenbluh M.Optical hyperpolarization and NMR detection of 129Xe on a microfluidic chip.Nat Commun2014;5:3908

[5]

Lin F,Zhou X.Orientation control of graphene flakes by magnetic field: broad device applications of macroscopically aligned graphene.Adv Mater2017;29:1604453

[6]

Chi Z,Wang Y.Adaptive cylindrical wireless metasurfaces in clinical magnetic resonance imaging.Adv Mater2021;33:e2102469

[7]

Espinosa A,Curcio A.Janus magnetic-plasmonic nanoparticles for magnetically guided and thermally activated cancer therapy.Small2020;16:e1904960

[8]

Liu JF,Ferrari C.Use of oppositely polarized external magnets to improve the accumulation and penetration of magnetic nanocarriers into solid tumors.ACS Nano2020;14:142-52 PMCID:PMC7002255

[9]

Xu Y,Xia H,Zhang Q.Enantioselective synthesis of helical polydiacetylene by application of linearly polarized light and magnetic field.Nat Commun2014;5:5050

[10]

Qin S,Yang C.A magnetic protein biocompass.Nat Mater2016;15:217-26

[11]

Blondeau M,Guyot F.Magnetic-field induced rotation of magnetosome chains in silicified magnetotactic bacteria.Sci Rep2018;8:7699 PMCID:PMC5955880

[12]

Li Q,Feng X.Nanoparticle-regulated semiartificial magnetotactic bacteria with tunable magnetic moment and magnetic sensitivity.Small2019;15:e1900427

[13]

Shafi KVPM,Prozorov R.Surfactant-assisted self-organization of cobalt nanoparticles in a magnetic fluid.Adv Mater1998;10:590-3

[14]

Guo R,Yuan B,Liu J.Magnetic liquid metal (Fe-EGaIn) based multifunctional electronics for remote self-healing materials, degradable electronics, and thermal transfer printing.Adv Sci (Weinh)2019;6:1901478 PMCID:PMC6794621

[15]

Zhang J,Liu J.Self-propelled liquid metal motors steered by a magnetic or electrical field for drug delivery.J Mater Chem B2016;4:5349-57

[16]

Morris DJ,Grigera SA.Dirac strings and magnetic monopoles in the spin ice Dy2Ti2O7.Science2009;326:411-4

[17]

Bramwell ST,Calder S,Prabhakaran D.Measurement of the charge and current of magnetic monopoles in spin ice.Nature2009;461:956-9

[18]

Castelnovo C,Sondhi SL.Magnetic monopoles in spin ice.Nature2008;451:42-5

[19]

Gibney E.Quantum cloud simulates magnetic monopole.Nature2014;

[20]

Wang MF,Jin XJ.Modeling of movement of liquid metal droplets driven by an electric field.Phys Chem Chem Phys2017;19:18505-13

[21]

Handschuh-Wang S,Zhu L,Zhou X.Electric actuation of liquid metal droplets in acidified aqueous electrolyte.Langmuir2019;35:372-81

[22]

Handschuh-Wang S,Wang T,Zhou X.Surface tension of the oxide skin of gallium-based liquid metals.Langmuir2021;37:9017-25

[23]

Tang S,Kalantar-zadeh K.Gallium liquid metal: the Devil's elixir.Annu Rev Mater Res2021;51:381-408

[24]

Fu J,Cui Y.Interfacial engineering of room temperature liquid metals.Adv Mater Interfaces2021;8:2001936

[25]

Handschuh-wang S,Zhou X.Critical review on the physical properties of gallium-based liquid metals and selected pathways for their alteration.J Phys Chem C2021;125:20113-42

[26]

Keene BJ.Review of data for the surface tension of pure metals.Int Mater Rev1993;38:157-92

[27]

Liu J,He ZZ. Liquid metal soft machines: principles and applications. Singapore: Springer; 2019.

[28]

Yang J,He Z,Liu J.A personal desktop liquid-metal printer as a pervasive electronics manufacturing tool for society in the near future.Engineering2015;1:506-12

[29]

Sheng L,Liu J.Diverse transformations of liquid metals between different morphologies.Adv Mater2014;26:6036-42

[30]

Zhang J,Sheng L.Self-fueled biomimetic liquid metal mollusk.Adv Mater2015;27:2648-55

[31]

Wang H,Li H.A liquid gripper based on phase transitional metallic ferrofluid.Adv Funct Mater2021;31:2100274

[32]

Zhang R,Gao M.Liquid metal electrode-enabled flexible microdroplet sensor.Lab Chip2020;20:496-504

[33]

Guo R,Gong H.Liquid metal spiral coil enabled soft electromagnetic actuator.Sci China Technol Sci2018;61:516-21

[34]

Tang SY,Sivan V.Liquid metal enabled pump.Proc Natl Acad Sci U S A2014;111:3304-9 PMCID:PMC3948272

[35]

Yang X,Yuan B.Alternating electric field actuated oscillating behavior of liquid metal and its application.Sci China Technol Sci2016;59:597-603

[36]

Yuan B,Zhou Y.Self-powered macroscopic Brownian motion of spontaneously running liquid metal motors.Sci Bull2015;60:1203-10

[37]

Zhang J,Liu J.Autonomous convergence and divergence of the self-powered soft liquid metal vehicles.Sci Bull2015;60:943-51

[38]

Tan S,Liu J.Electrical method to control the running direction and speed of self-powered tiny liquid metal motors.Proc R Soc A2015;471:20150297

[39]

Sheng L,Yao Y.Transient state machine enabled from the colliding and coalescence of a swarm of autonomously running liquid metal motors.Small2015;11:5253-61

[40]

Nurge MA,Starr SO.Drag and lift forces between a rotating conductive sphere and a cylindrical magnet.Am J Phys2018;86:443-52

[41]

Tan S,Yuan B.Magnetic trap effect to restrict motion of self-powered tiny liquid metal motors.Appl Phys Lett2015;107:071904

[42]

Tan SC,Gui H.Galvanic corrosion couple-induced Marangoni flow of liquid metal.Soft Matter2017;13:2309-14

[43]

Zhang J,Liu J.Synthetically chemical-electrical mechanism for controlling large scale reversible deformation of liquid metal objects.Sci Rep2014;4:7116 PMCID:PMC4236740

[44]

Redzic DV.Electromagnetostatic charges and fields in a rotating conducting sphere.Prog Electromagn Res2010;110:383-401

[45]

Jia XM.Whole-space analysis of the magnetic field of rotating sphere with charged (in Chinese).College Physics2010; 29:20-21

[46]

Jin SW,Hong SY.Stretchable loudspeaker using liquid metal microchannel.Sci Rep2015;5:11695 PMCID:PMC4504143

[47]

Milde P,Seidel J.Unwinding of a skyrmion lattice by magnetic monopoles.Science2013;340:1076-80

[48]

Dirac PAM.Quantised singularities in the electromagnetic field.Proc R Soc Lond A1931;133:60-72

[49]

Hooft G.Magnetic monopoles in unified gauge theories.Nucl Phys1974;79:276-84

[50]

Polyakov AM.Particle spectrum in quantum field theory. 30 Years of the Landau Institute - Selected Papers. WORLD SCIENTIFIC; 1996. p. 540-1.

[51]

Kibble TWB.Topology of cosmic domains and strings.J Phys A: Math Gen1976;9:1387-98

[52]

Wu TT.Concept of nonintegrable phase factors and global formulation of gauge fields.Phys Rev D1975;12:3845-57

[53]

Abrikosov AA Jr.Dirac operator on the Riemann sphere.arXiv e-prints2002;arXiv:hep-th/0212134:

[54]

Béché A,Van Tendeloo G.Magnetic monopole field exposed by electrons.Nature Phys2014;10:26-9

[55]

Fang Z,Takahashi KS.The anomalous Hall effect and magnetic monopoles in momentum space.Science2003;302:92-5

[56]

Bovo L,Prabhakaran D,Bramwell ST.Brownian motion and quantum dynamics of magnetic monopoles in spin ice.Nat Commun2013;4:1535 PMCID:PMC3586720

[57]

Khomskii DI.Electric dipoles on magnetic monopoles in spin ice.Nat Commun2012;3:904

[58]

Dusad R,Hoke JC.Magnetic monopole noise.Nature2019;571:234-9

[59]

Pietilä V.Creation of Dirac monopoles in spinor Bose-Einstein condensates.Phys Rev Lett2009;103:030401

[60]

Ray MW,Kandel S,Hall DS.Observation of Dirac monopoles in a synthetic magnetic field.Nature2014;505:657-60

[61]

Kornilov O.A quantum vortex made of atoms.Science2021;373:1084

AI Summary AI Mindmap
PDF

58

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/