The roles of the various plasma agents in the inactivation of bacteria

被引:229
作者
Lu, XinPei [1 ]
Ye, Tao [2 ]
Cao, YingGuang [2 ]
Sun, ZiYong [2 ]
Xiong, Qing [1 ]
Tang, ZhiYuan [1 ]
Xiong, ZhiLan [1 ]
Hu, Jing [1 ]
Jiang, ZhongHe [1 ]
Pan, Yuan [1 ]
机构
[1] Huazhong Univ Sci & Technol, Coll Elect & Elect Engn, Wuhan 430074, Hubei, Peoples R China
[2] Huazhong Univ Sci & Technol, Tongji Med Coll, Wuhan 430030, Hubei, Peoples R China
关键词
D O I
10.1063/1.2977674
中图分类号
O59 [应用物理学];
学科分类号
摘要
The roles of various plasma agents in the inactivation of bacteria have recently been investigated. However, up to now, the effect of the charged particles on the inactivation of bacteria is not well understood. In this paper, an atmospheric pressure plasma jet device, which generates a cold plasma p plume carrying a peak current of 300 mA, is used to investigate the role of the charged particles in the inactivation process. It is found that the charged particles play a minor role in the inactivation process when He/N-2(3%) is used as working gas. On the other hand, when He/O-2(3%) is used, the charged particles are expected to play an important role in the inactivation of bacteria. Further analysis shows that the negative ions O-2(-) might be the charged particles that are playing the role. Besides, it is found that the active species, including O, O-3, and metastable state O-2*, can play a crucial role in the inactivation of the bacteria. However, the excited He* N-2 C (3)Pi, and N-2(+) B (2)Sigma(+)(u) 2 U have no significant direct effect on the inactivation of bacteria. It is also concluded that heat and UV play no or minor role in the inactivation process. (C) 2008 American Institute of Physics.
引用
收藏
页数:5
相关论文
共 35 条
[1]  
Becker K, 2005, SER PLASMA PHYS, P124
[2]   Microplasmas and applications [J].
Becker, KH ;
Schoenbach, KH ;
Eden, JG .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2006, 39 (03) :R55-R70
[3]  
BEGUM A, 2008, P 35 IEEE INT C PLAS, P146
[4]   A model for plasma modification of polypropylene using atmospheric pressure discharges [J].
Dorai, R ;
Kushner, MJ .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2003, 36 (06) :666-685
[5]   Determination of rotational and vibrational temperatures in a discharge with liquid non-metallic electrodes in air at atmospheric pressure [J].
Faure, G ;
Shkol'nik, SM .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1998, 31 (10) :1212-1218
[6]   Comparison of direct and indirect effects of non-thermal atmospheric-pressure plasma on bacteria [J].
Fridman, Gregory ;
Brooks, Ari D. ;
Balasubramanian, Manjula ;
Fridman, Alexander ;
Gutsol, Alexander ;
Vasilets, Victor N. ;
Ayan, Halim ;
Friedman, Gary .
PLASMA PROCESSES AND POLYMERS, 2007, 4 (04) :370-375
[7]   Reaction chemistry in the afterglow of an oxygen-helium, atmospheric-pressure plasma [J].
Jeong, JY ;
Park, J ;
Henins, I ;
Babayan, SE ;
Tu, VJ ;
Selwyn, GS ;
Ding, G ;
Hicks, RF .
JOURNAL OF PHYSICAL CHEMISTRY A, 2000, 104 (34) :8027-8032
[8]   Removal of volatile organic compounds in atmospheric pressure air by means of direct current glow discharges [J].
Jiang, CQ ;
Mohamed, AAH ;
Stark, RH ;
Yuan, JH ;
Schoenbach, KH .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (04) :1416-1425
[9]   Study of geometrical and operational parameters controlling the low frequency microjet atmospheric pressure plasma characteristics [J].
Kim, Dan Bee ;
Rhee, J. K. ;
Moon, S. Y. ;
Choe, W. .
APPLIED PHYSICS LETTERS, 2006, 89 (06)
[10]   Comparative study of atmospheric pressure low and radio frequency microjet plasmas produced in a single electrode configuration [J].
Kim, Dan Bee ;
Rhee, J. K. ;
Gweon, B. ;
Moon, S. Y. ;
Choe, W. .
APPLIED PHYSICS LETTERS, 2007, 91 (15)