• 제목/요약/키워드: Chemically Active Species

검색결과 14건 처리시간 0.028초

호주 알레로파시 연구의 두 방향(1988-1993) (Conventional and Unconventional Research on Allelopathy in Australia (1988-1993))

  • 길봉섭
    • The Korean Journal of Ecology
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    • 제20권2호
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    • pp.111-123
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    • 1997
  • Although the number of active workers in Australia is small the range of species associated with allelopathic activity is at least as large as that reported elsewhere in the world. In this paper, work on native and infroduced plants is discussed under the general heading of "conventional allelopathy", thiat is, interactions between plants which are chemically mediated. Work in which compounds associated with allelopathy, in the conventional sense, are biologically active in different contexts is included under "unconventional allelopathy", Examples which involve microorganisms, corals and other marie species, and mammals are discussed.mmals are discussed.

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기체-액체 혼합 방전에 의한 화학적 활성종 생성 특성 (Generation of Chemically Active Species in Hybrid Gas-Liquid Discharges)

  • 정재우
    • 대한환경공학회지
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    • 제29권5호
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    • pp.556-563
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    • 2007
  • 고전압 방전극이 기체상에 위치하고 접지 전극이 수중에 설치된 기체-액체 혼합 방전에 의한 화학적 활성종의 발생 특성에 관해 실험실 규모 실험을 수행하였다. 실험된 전극 구조는 기존의 연구에서 사용해왔던 일반적 전극 배열에서보다 높은 전계 강도(electric field strength)를 형성하고 짧은 폭을 지닌 펄스들을 생성시킴으로써 방전에 의해서 일어나는 화학반응의 에너지 효율성을 높일 수 있는 것으로 나타났다. 방전에 의해 기체상에 생성되는 오존 농도는 실험된 전압 범위의 중간 값인 45 kV 조건에서 가장 높은 것으로 관찰되었다. 용액 전도도가 낮을수록 액체상을 통한 전기 저항이 증가하여 기체상에서 높은 전계 강도가 형성되므로 오존 생성을 촉진시키는 것으로 나타났다. 인가전압이 증가할수록 높은 전계 강도가 형성되어 강한 방전이 이루어지므로 과산화수소 생성속도가 증가하는 것으로 나타났다. 낮은 전압에서는 용액 전도도가 증가하면 과산화수소 분해속도가 증가하기 때문에 과산화수소 생성 속도가 감소하며 높은 전압에서는 용액 전도도가 증가하면 자외선 조사 등에 의해 과산화수소 발생의 중간 생성물인 OH 라디칼의 발생이 촉진되므로 과산화수소 생성 속도가 증가하는 것으로 나타났다. 산소와 아르곤의 혼합기체가 공급될 때, 강하고 안정한 방전이 이루어져 과산화수소 생성속도가 증가하는 것으로 나타났다.

이류체 노즐을 이용한 유전체장벽방전 플라즈마 가스의 OH 라디칼 생성 향상 (Enhancement of OH Radical Generation of Dielectric Barrier Discharge Plasma Gas Using Air-automizing Nozzle)

  • 박영식
    • 한국환경과학회지
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    • 제27권8호
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    • pp.621-629
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    • 2018
  • Many chemically active species such as ${\cdot}H$, ${\cdot}OH$, $O_3$, $H_2O_2$, hydrated $e^-$, as well as ultraviolet rays, are produced by Dielectric Barrier Discharge (DBD) plasma in water and are widely use to remove non-biodegradable materials and deactivate microorganisms. As the plasma gas containing chemically active species that is generated from the plasma reaction has a short lifetime and low solubility in water, increasing the dissolution rate of this gas is an important challenge. To this end, the plasma gas and water within reactor were mixed using the air-automizing nozzle, and then, water-gas mixture was injected into water. The dissolving effect of plasma gas was indirectly confirmed by measuring the RNO (N-Dimethyl-4-nitrosoaniline, indicator of the formation of OH radical) solution. The plasma system consisted of an oxygen generator, a high-voltage power supply, a plasma generator and a liquid-gas mixing reactor. Experiments were conducted to examine the effects of location of air-automizing nozzle, flow rate of plasma gas, water circulation rate, and high-voltage on RNO degradation. The experimental results showed that the RNO removal efficiency of the air-automizing nozzle is 29.8% higher than the conventional diffuser. The nozzle position from water surface was not considered to be a major factor in the design and operation of the plasma reactor. The plasma gas flow rate and water circulation rate with the highest RNO removal rate were 3.5 L/min and 1.5 L/min, respectively. The ratio of the plasma gas flow rate to the water circulation rate for obtaining an RNO removal rate of over 95% was 1.67 ~ 4.00.

시호의 약리성분 특성 (Medicinal Components in Bupleurum Species)

  • 김관수;이승택;채영암
    • 한국작물학회지
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    • 제41권spc1호
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    • pp.123-144
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    • 1996
  • This review deals briefly with the various medicinal components(mainly saikosaponins), their biological activities and the variation of their contents by different cultivation environment and plant parts in Bupleurum species. Bupleuri radix, a crude drug, is the root of Bupleurum falcatum L. (Korea, Japan), B. chinense(China), and their related species (Umbelliferae). There are over 120 species in Bupleurum genus throughout world, mainly Asian area, and over 5 species in Korea, investigated up to now. These plants contain many physiological active compounds and the principal components are saikosaponins. Major activities of this crude drug and saikosaponins are the anti-inflammatory and antihepatotoxic activities. Saikosaponins and their derivatives in Bupleurum spp. have been chemically studied, isolated and identified over 70 compounds in over 50 species. Other components, physiologically active ones, also have been investigated, which are the groups of lignan, flavonoid, essential oil, polyacetylene, polysaccharide, etc. Saikosaponins belong to the group of triterpenoid saponin chemotaxonomically and occur the accumulation and turnover in plant tissues through secondary metabolism, mevalonic acid pathway. The contents and kinds of saikosaponins and other components in Bupleurum spp. plants are various due to different species and growing environments, as the plant growth characters and yield are various. Most of medicinal plants as well as Bupleurum species are very useful as agricultural products and traditional medicines, and also are very valuable as genetic resources and natural products. So we need to collect, evaluate, preserve, and utilize various medicinal plants, and also to under-stand secondary metabolism and improve the breeding and cultivation techniques for the safe production of crude drugs with high quality and yielding.

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Electronic structure and catalytic reactivity of model oxide catalysts

  • 김유권
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.35-35
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    • 2010
  • Understanding the mechanistic details of heterogeneous catalytic reactions will provide a way to tune the selectivity between various competing reaction channels. In this regard, catalytic decomposition of alcohols over the rutile $TiO_2$(110) surface as a model oxide catalyst has been studied to understand the reaction mechanism employing the temperature-programmed desorption (TPD) technique. The $TiO_2$(110) model catalyst is found to be active toward alcohol dehydration. We find that the active sites are bridge-bonded oxygen vacancies where RO-H heterolytically dissociates and binds to the vacancy to produce alkoxy (RO-) and hydroxyl (HO-). Two protons adsorbed onto the bridge-bonded oxygen atoms (-OH) readily react with each other to form a water molecule at ~500 K and desorb from the surface. The alkoxy (RO-) undergoes decomposition at higher temperatures into the corresponding alkene. Here, the overall desorption kinetics is limited by a first-order decomposition of intermediate alkoxy (RO-) species bound to the vacancy. We show that detailed analysis on the yield and the desorption temperatures as a function of the alkyl substituents provides valuable insights into the reaction mechanism. After the catalytic role of the oxygen vacancies has been established, we employed x-ray photoelectron spectroscopy to further study the surface electronic structure related to the catalytically active defective sites. The defect-related state in valence band has been related to the chemically reduced $Ti^{3+}$ defects near the surface region and are found to be closely related to the catalytic activity of the $TiO_2$(110) surface.

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공기-플라즈마 방전 시스템에서 화학적 활성종의 생성에 대한 연구 (Study on the Generation of Chemically Active Species using Air-plasma Discharging System)

  • 김동석;박영식
    • 한국물환경학회지
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    • 제28권3호
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    • pp.401-408
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    • 2012
  • High-voltage dielectric discharges are an emerging technique in environmental pollutant degradation, which that are characterized by the production of hydroxyl radicals as the primary degradation species. The initiation and propagation of the electrical discharges depends on several physical, chemical, and electrical parameters such as 1st and 2nd voltage of power, gas supply, conductivity and pH. These parameters also influence the physical and chemical characteristics of the discharges, including the production of reactive species such as OH, $H_2O_2$ and $O_3$. The experimental results showed that the optimum 1st voltage and air flow rate for RNO (N-Dimethyl-4-nitrosoaniline, indicator of the generation of OH radical) degradation were 160 V (2nd voltage of is 15 kV) and 4 L/min, respectively. As the increased of the 2nd voltage (4 kV to 15 kV), RNO degradation, $H_2O_2$ and $O_3$ generation were increased. The conductivity of the solution was not influencing the RNO degradation and $H_2O_2$ and $O_3$ generation. The effects pH was not high on RNO degradation. However, the lower pH and the conductivity, the higher $H_2O_2$ and $O_3$ generation were observed.

평판형 유전체 장벽 방전 반응기에서 Acetonitrile의 분해 특성 (Decomposition of Acetonitrile by Planar Type Dielectric Barrier Discharge Reactor)

  • 송영훈;김관태;류삼곤;이해완
    • 한국군사과학기술학회지
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    • 제5권3호
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    • pp.105-112
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    • 2002
  • A combined process of non-thermal plasma and catalytic techniques has been investigated to treat toxic gas compounds in air. The treated gas in the present study is $CH_3$CN that has been known to be a simulant of toxic chemical agent. A planar type dielectric barrier discharge(DBD) reactor has been used to generate non-thermal plasma that produces various chemically active species, O, N, OH, $O_3$, ion, electrons, etc. Several different types of adsorbents and catalysts, which are MS 5A, MS 13X, Pt/alumina, are packed into the plasma reactor, and have been tested to save power consumption and to treat by-products. Various aspects of the present techniques, which are decomposition efficiencies along with the power consumption, by-product analysis, reaction pathways modified by the adsorbents and catalysts, have been discussed in the present study.

평판형 유전체 장벽 방전 반응기에서 충진물질에 따른 아세토나이트릴의 분해 특성 (Decomposition of Acetonitrile Using a Planar Type Dielectric Barrier Discharge Reactor Packed with Adsorption and Catalyst Materials)

  • 김관태;송영훈;김석준
    • 한국대기환경학회지
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    • 제19권2호
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    • pp.157-165
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    • 2003
  • A combined process of non-thermal plasma and catalytic technique has been investigated to treat $CH_3$CN gas in the atmosphere. A planar type dielectric barrier discharge (DBD) reactor has been used to generate the non-thermal plasma that produces various chemically active species, such as O, N, OH, $O_3$, ion, electrons, etc. Several different types of the beads. which are Molecular Sieve (MS) 5A, MS 13X, Pt/alumina beads, are packed into the DBD reactor, and have been tested to characterize the effects of adsorption and catalytic process on treating the $CH_3$CN gas in the DBD reactor. The test results showed that the operating power consumption and the amounts of the by-products of the non-thermal plasma process can be reduced by the assistance of the adsorption and catalytic process.

플라즈마 공정을 이용한 동물성 플랑크톤 Artemia sp. 불활성화 (Inactivation of Zooplankton Artemia sp. Using Plasma Process)

  • 김동석;박영식
    • 한국환경과학회지
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    • 제32권3호
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    • pp.197-204
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    • 2023
  • This study aims to inactivate Artemia sp. (Zooplankton) in ballast water through the dielectric barrier discharge (DBD) plasma process. The DBD plasma process has the advantage of enabling direct electric discharge in water and utilizing chemically active species generated by the plasma reaction. The experimental conditions for plasma reaction are as follows; high voltage of 9-22 kV, plasma reaction time of 15-600 s, and air flow rate of 0.5-5.5 L/min. The results showed that the optimal experimental conditions for Artemia sp inactivation were 16 kV, 60 s, 2.5 L/min, respectively. The concentrations of total residual oxidants and ozone generated by plasma reaction increased with an increase of in voltage and reaction time, and the concentration of generated air did not increase above a certain amount.

고속 교반을 이용한 기-액 혼합 플라즈마방전 시스템의 성능 향상 (Performance Enhancement of Gas-Liquid Mixed Plasma Discharge System using High Speed Agitation)

  • 박영식
    • 한국환경과학회지
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    • 제26권6호
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    • pp.711-717
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    • 2017
  • Dielectric Barrier Discharge (DBD) plasma is a new technique for use in environmental pollutant degradation, which is characterized by the production of hydroxyl radicals as the primary degradation species. Due to the short lifetime of the chemically active species generated during the plasma reaction, the dissolution of the plasma gas has a significant effect on the reaction performance. The plasma reaction performance can be enhanced by combining the basic plasma reactor with a homogenizer system in which the bubbles are destroyed and turned into micro-bubbles. For this purpose, the improvement of the dissolution of plasma gas was evaluated by measuring the RNO (N-dimethyl-4-nitrosoaniline, an indicator of the generation of OH radicals). Experiments were conducted to evaluate the effects of the diameter, rotation speed, and height of the homogenizer, pore size, and number of the diffuser and the applied voltage on the plasma reaction. The results showed that the RNO removal efficiency of the plasma reactor combined with a homogenizer is two times higher than that of the conventional one. The optimum rotor size and rotation speed of the homogenizer were 15.1 mm, and 19,700 rpm, respectively. Except for the lowest pore size distribution of $10-16{\mu}m$, the pore size of the diffuser showed little effect on RNO removal.