[1] Zhang X,Zhang X-F,Li H-P,et al. Atmospheric and room temperature plasma(ARTP)as a new powerful mutagenesis tool [J]. Applied Microbiology and Biotechnology,2014,98(12):5387-5396. [2] Kong M G,Kroesen G,Morfill G,et al. Plasma medicine:an introductory review [J]. New Journal of Physics,2009,11(11):115012. [3] Laroussi M. Low-temperature plasmas for medicine? [J]. Plasma Science,IEEE Transactions on,2009,37(6):714-725. [4] Weltmann K D,Kindel E,von Woedtke T,et al. Atmospheric-pressure plasma sources:prospective tools for plasma medicine[J]. Pure and Applied Chemistry,2010,82(6):1223-1237. [5] Yousfi M,Merbahi N,Pathak A,et al. Low-temperature plasmas at atmospheric pressure:toward new pharmaceutical treatments in medicine [J]. Fundamental & Clinical Pharmacology,2013,28(2):123-135. [6] Fridman G,Friedman G,Gutsol A,et al. Applied plasma medicine[J]. Plasma Processes and Polymers,2008,5(6):503-533. [7] 潘云翔,孙正庆,段明宇,等. 冷等离子体诱导生物分子自组装制备生物材料研究进展 [J]. 化工学报,2015(08):2824-2830. [8] 王立言,常压室温等离子体对微生物的作用机理及其应用基础研究[D]. 北京:清华大学,2009. [9] 张雪,张晓菲,王立言,等. 常压室温等离子体生物诱变育种及其应用研究进展 [J]. 化工学报,2014,65(7):2676-2684. [10] 张雪,常压室温等离子体(ARTP)的微生物诱变机理研究[D]. 北京:清华大学,2015. [11] Fang M,Jin L,Zhang C,et al. Rapid mutation of spirulina platensis by a new mutagenesis system of atmospheric and room temperature plasmas (ARTP) and generation of a mutant library with diverse phenotypes [J]. PLoS ONE,2013,8(10):e77046. [12] Tan Y,Fang M,Jin L,et al. Culture characteristics of the atmospheric and room temperature plasma-mutated Spirulina platensis mutants in CO2 aeration culture system for biomass production [J]. Journal of Bioscience and Bioengineering,2015,120(4):438-443. [13] Zhang X,Zhang C,Zhou Q-Q,et al. Quantitative evaluation of DNA damage and mutation rate by atmospheric and room-temperature plasma (ARTP) and conventional mutagenesis [J]. Applied Microbiology and Biotechnology,2015,99(13):5639-5646. [14] Laroussi M. Low temperature plasma-based sterilization:overview and state-of-the-art [J]. Plasma Processes and Polymers,2005,2(5):391-400. [15] Lloyd G,Friedman G,Jafri S,et al. Gas plasma:medical uses and developments in wound care [J]. Plasma Processes and Polymers,2010,7(3-4):194-211. [16] Kim G C,Kim G J,Park S R,et al. Air plasma coupled with antibody-conjugated nanoparticles:a new weapon against cancer [J]. Journal of Physics D:Applied Physics,2009,42(3):032005. [17] Lee H W,Kim G J,Kim J M,et al. Tooth bleaching with nonthermal atmospheric pressure plasma [J]. Journal of Endodontics,2009,35(4):587-591. [18] NORBERG S A,TIAN W,JOHNSEN E,et al. Atmospheric pressure plasma jets interacting with liquid covered tissue:touching and not-touching the liquid [J]. Journal of Physics D:Applied Physics,2014,47(47):475203. [19] Tian W,Kushner M J. Atmospheric pressure dielectric barrier discharges interacting with liquid covered tissue [J]. Journal of Physics D:Applied Physics,2014,47(16):165201. [20] Yusupov M,Neyts E C,Simon P,et al. Reactive molecular dynamics simulations of oxygen species in a liquid water layer of interest for plasma medicine [J]. Journal of Physics D:Applied Physics,2014,47(2):025205. [21] Rhoades R A,Bell D R. Medical physiology:principles for clinical medicine[M]. 4th ed. Baltimore,MD:Williams and Wilkins,2012. [22] Foster J,Sommers B S,Gucker S N,et al. Perspectives on the interaction of plasmas with liquid water for water purification [J]. Plasma Science,IEEE Transactions on,2012,40(5):1311-1323. [23] 屈广周,李杰,梁东丽,等. 低温等离子体技术处理难降解有机废水的研究进展[J]. 化工进展,2012,31(03):662-670. [24] Ostrikov K,Neyts E C,Meyyappan M. Plasma nanoscience:from nano-solids in plasmas to nano-plasmas in solids [J]. Advances in Physics,2013,62(2):113-224. [25] 孔刚玉,刘定新. 气体等离子体与水溶液的相互作用研究-意义、挑战与新进展 [J]. 高电压技术,2014,40(10):2956-2965. [26] Liu F,Sun P,Bai N,et al. Inactivation of bacteria in an aqueous environment by a direct-current,cold-atmospheric-pressure air plasma microjet [J]. Plasma Processes and Polymers,2010,7(3-4):231-236. [27] Machala Z,Tarabova B,Hensel K,et al. Formation of ROS and RNS in water electro-sprayed through transient spark discharge in air and their bactericidal effects [J]. Plasma Processes and Polymers,2013,10(7):649-659. [28] Lukes P,Dolezalova E,Sisrova I,et al. Aqueous-phase chemistry and bactericidal effects from an air discharge plasma in contact with water:evidence for the formation of peroxynitrite through a pseudo-second-order post-discharge reaction of H2O2 and HNO2 [J]. Plasma Sources Science and Technology,2014,23(1):015019. [29] VANGils C A J,Hofmann S,Boekema B K H L,et al. Mechanisms of bacterial inactivation in the liquid phase induced by a remote RF cold atmospheric pressure plasma jet [J]. Journal of Physics D:Applied Physics,2013,46(17):175203. [30] Zhang Q,Sun P,Feng H,et al. Assessment of the roles of various inactivation agents in an argon-based direct current atmospheric pressure cold plasma jet [J]. Journal of Applied Physics,2012,111(12):123305. [31] Traylor M J,Pavlovich M J,Karim S,et al. Long-term antibacterial efficacy of air plasma-activated water [J]. Journal of Physics D:Applied Physics,2011,44(47):472001. [32] Pavlovich M J,Chang H-W,Sakiyama Y,et al. Ozone correlates with antibacterial effects from indirect air dielectric barrier discharge treatment of water [J]. Journal of Physics D:Applied Physics,2013,46(14):145202. [33] Oehmigen K,Hähnel M,Brandenburg R,et al. The role of acidification for antimicrobial activity of atmospheric pressure plasma in liquids [J]. Plasma Processes and Polymers,2010,7(3-4):250-257. [34] Oehmigen K,Winter J,Hähnel M,et al. Estimation of possible mechanisms of escherichia coli inactivation by plasma treated sodium chloride solution [J]. Plasma Processes and Polymers,2011,8(10):904-913. [35] Thagard S M,Takashima K,Mizuno A. Chemistry of the positive and negative electrical discharges formed in liquid water and above a gas-liquid surface [J]. Plasma Chemistry and Plasma Processing,2009,29(6):455-473. [36] Ercan U K,Wang H,Ji H,et al. Nonequilibrium plasma-activated antimicrobial solutions are broad-spectrum and retain their efficacies for extended period of time [J]. Plasma Processes and Polymers,2013,10(6):544-555. [37] Hoeben W F L M,VAN Veldhuizen E M,Rutgers W R,et al. Gas phase corona discharges for oxidation of phenol in an aqueous solution [J]. Journal of Physics D:Applied Physics,1999,32(24):L133. [38] Lee H W,Lee H W,Kang S K,et al. Synergistic sterilization effect of microwave-excited nonthermal Ar plasma,H2O2,H2O and TiO2,and a global modeling of the interactions [J]. Plasma Sources Science and Technology,2013,22(5):055008. [39] Li S,Timoshkin I V,Maclean M,et al. Fluorescence detection of hydroxyl radicals in water produced by atmospheric pulsed discharges [J]. IEEE Transactions on Dielectrics and Electrical Insulation,2015,22(4):1856-1865. [40] Sun P,Sun Y,Wu H,et al. Atmospheric pressure cold plasma as an antifungal therapy [J]. Applied Physics Letters,2011,98(2):021501. [41] Wu H,Sun P,Feng H,et al. Reactive oxygen species in a non-thermal plasma microjet and water system:generation,conversion,and contributions to bacteria inactivation-an analysis by electron spin resonance spectroscopy [J]. Plasma Processes and Polymers,2012,9(4):417-424. [42] Bai N,Sun P,Zhou H,et al. Inactivation of staphylococcus aureus in water by a cold,He/O2 atmospheric pressure plasma microjet [J]. Plasma Processes and Polymers,2011,8(5):424-431. [43] Tani A,Ono Y,Fukui S,et al. Free radicals induced in aqueous solution by non-contact atmospheric-pressure cold plasma [J]. Applied Physics Letters,2012,100(25):254103. [44] Tresp H,Hammer M U,Winter J,et al. Quantitative detection of plasma-generated radicals in liquids by electron paramagnetic resonance spectroscopy [J]. Journal of Physics D:Applied Physics,2013,46(43):435401. [45] Rumbach P,Bartels D M,Sankaran R M,et al. The solvation of electrons by an atmospheric-pressure plasma [J]. Nat. Commun.,2015,6. [46] LU X,NAIDIS G V,LAROUSSI M,et al. Reactive species in non-equilibrium atmospheric-pressure plasmas:generation,transport,and biological effects[J]. Physics Reports,2016,630:1-84. [47] Lee H W,Park G Y,Seo Y S,et al. Modelling of atmospheric pressure plasmas for biomedical applications [J]. Journal of Physics D:Applied Physics,2011,44(5):053001. [48] Kim H C,Iza F,Yang S S,et al. Particle and fluid simulations of low-temperature plasma discharges:benchmarks and kinetic effects [J]. Journal of Physics D:Applied Physics,2005,38(19):R283. [49] Xiong Z,Kushner M J. Surface corona-bar discharges for production of pre-ionizing UV light for pulsed high-pressure plasmas [J]. Journal of Physics D:Applied Physics,2010,43(50):505204. [50] Xiong Z,Robert E,Sarron V,et al. Dynamics of ionization wave splitting and merging of atmospheric-pressure plasmas in branched dielectric tubes and channels [J]. Journal of Physics D:Applied Physics,2012,45(27):275201. [51] Babaeva N Y,Kushner M J. Reactive fluxes delivered by dielectric barrier discharge filaments to slightly wounded skin [J]. Journal of Physics D:Applied Physics,2013,46(2):025401. [52] 王志斌. 裸露金属电极结构大气压射频辉光放电等离子体特性研究[D]. 北京:清华大学,2013. [53] Liu D X,Bruggeman P,Iza F,et al. Global model of low-temperature atmospheric-pressure He + H2O plasmas [J]. Plasma Sources Science and Technology,2010,19(2):025018. [54] Tian W,Kushner M J. Long-term effects of multiply pulsed dielectric barrier discharges in air on thin water layers over tissue:stationary and random streamers [J]. Journal of Physics D:Applied Physics,2015,48(49):494002. [55] Chen C,Liu D X,Liu Z C,et al. A model of plasma-biofilm and plasma-tissue interactions at ambient pressure [J]. Plasma Chemistry and Plasma Processing,2014,34(3):403-441. [56] Liu Z C,Liu D X,Chen C,et al. Physicochemical processes in the indirect interaction between surface air plasma and deionized water [J]. Journal of Physics D:Applied Physics,2015,48(49):495201. [57] Kim H Y,Lee H W,Kang S K,et al. Modeling the chemical kinetics of atmospheric plasma for cell treatment in a liquid solution [J]. Physics of Plasmas,2012,19(7):073518. [58] Hamaguchi S. Chemically reactive species in liquids generated by atmospheric-pressure plasmas and their roles in plasma medicine [J]. AIP Conference Proceedings,2013,1545(1):214-222. [59] Paal J V d,Aernouts S,van Duin A C T,et al. Interaction of O and OH radicals with a simple model system for lipids in the skin barrier:a reactive molecular dynamics investigation for plasma medicine [J]. Journal of Physics D:Applied Physics,2013,46(39):395201. [60] Yusupov M,Bogaerts A,Huygh S,et al. Plasma-induced destruction of bacterial cell wall components:a reactive molecular dynamics simulation [J]. The Journal of Physical Chemistry C,2013,117(11):5993-5998. [61] Yusupov M,Neyts E C,Khalilov U,et al. Atomic-scale simulations of reactive oxygen plasma species interacting with bacterial cell walls [J]. New Journal of Physics,2012,14(9):093043. [62] Verlackt C C W,Neyts E C,Jacob T,et al. Atomic-scale insight into the interactions between hydroxyl radicals and DNA in solution using the ReaxFF reactive force field [J]. New Journal of Physics,2015,17(10):103005. [63] Neyts E C,Yusupov M,Verlackt C C,et al. Computer simulations of plasma-biomolecule and plasma-tissue interactions for a better insight in plasma medicine [J]. Journal of Physics D:Applied Physics,2014,47(29):293001. |