Collective excitations at non-equilibrium phase transition in metabolically active red blood cells

被引:4
|
作者
Pietruszka, Mariusz A. [1 ]
机构
[1] Univ Silesia, Fac Nat Sci, Inst Biol Biotechnol & Environm Protect, 28 Jagiellonska St, PL-40032 Katowice, Poland
关键词
Critical field effect; DNA mutations; Homeostasis; Phase space trajectory; Point-like attractor; Poincare? section; Power spectral density; Screening test; Superconducting gap ratio; MAJORANA FERMIONS; APPROXIMATE ENTROPY; BEHAVIOR; TIME; SUPERCONDUCTORS; RANGE; FIELD;
D O I
10.1016/j.biosystems.2022.104804
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Collective excitations of superconductors and superfluids have been extensively studied in condensed matter physics, while recent experimental advances have made it possible to study the non-equilibrium dynamics of human blood. Here, we show that some dynamic quantitative metrics calculated for the ion fluxes of two isolated peripheral blood droplets that were spatially separated by the presence of a semiconductor exhibited the char-acteristic features of a quasi-particle (or collective excitation) at a critical point. In the experiment, the spon-taneous peak, which indicates order, appeared at a physiological (hereafter: critical) temperature of 36 degrees C in the human blood. The ordering effect, which was still present in the weak magnetic field of 350 mT, disappeared above the critical magnetic field of approximately 500 mT, suggesting a dynamic Meissner effect in the system (henceforth "dynamic" means derived from the "time series" - a series of real numbers). Moreover, a super-conducting gap ratio of approx. 2.91 was found below the upper limit (4) of the BCS theory for weak coupling. Both these effects indicate the existence of a "superconducting" (ion) environment that is conducive to the emergence of quasiparticles. While the dynamic structure of the time series is substantially isotropic at tem-peratures beyond the phase transition, the system undergoes symmetry breakdown and non-equilibrium phase transition at a critical state. The designated series of dynamic variables can be used in medicine, inter alia, in screening tests as new indicators describing the patient's health.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Non-equilibrium phase transition at a critical point of human blood
    Mariusz A. Pietruszka
    Scientific Reports, 11
  • [2] Non-equilibrium phase transition at a critical point of human blood
    Pietruszka, Mariusz A.
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [3] Observables of non-equilibrium phase transition
    Tomasik, Boris
    Schulc, Martin
    Melo, Ivan
    Kopecna, Renata
    EUROPEAN PHYSICAL JOURNAL A, 2016, 52 (08):
  • [4] Observables of non-equilibrium phase transition⋆
    Boris Tomášik
    Martin Schulc
    Ivan Melo
    Renata Kopečná
    The European Physical Journal A, 2016, 52
  • [5] Non-equilibrium phenomena in the QCD phase transition
    Saridakis, EN
    CORRELATIONS & FLUCTUATIONS IN QCD, 2003, : 225 - 235
  • [6] Non-equilibrium fluctuations at the QCD phase transition
    Nahrgang, M.
    Bleicher, M.
    HOT QUARKS 2010: WORKSHOP FOR YOUNG SCIENTISTS ON THE PHYSICS OF ULTRARELATIVISTIC NUCLEUS-NUCLEUS COLLISIONS, 2011, 270
  • [7] Non-equilibrium phase transition in a binary mixture
    Marin, C
    Santos, A
    Garzo, V
    EUROPHYSICS LETTERS, 1996, 33 (08): : 599 - 604
  • [8] Constrained dynamics of localized excitations causes a non-equilibrium phase transition in an atomistic model of glass formers
    Speck, Thomas
    Chandler, David
    JOURNAL OF CHEMICAL PHYSICS, 2012, 136 (18):
  • [9] Nucleation of a non-equilibrium phase in a first order phase transition
    Johnson, TA
    Elbaum, C
    JOURNAL OF LOW TEMPERATURE PHYSICS, 1997, 107 (3-4) : 317 - 326
  • [10] Nucleation of a non-equilibrium phase in a first order phase transition
    T. A. Johnson
    C. Elbaum
    Journal of Low Temperature Physics, 1997, 107 : 317 - 326