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    https://www.riss.kr/link?id=A60263230

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    참고문헌 (Reference)

    1 Avvaru, B, "Ultrasonic atomization: Effect of Liquid Phase Properties" 44 (44): 146-158, 2006

    2 Topp, M. N, "Ultrasonic Atomization-a Photographic Study of the Mechanism of Disintegration" 4 (4): 17-25, 1973

    3 Lang, R. J, "Ultrasonic Atomization of Liquids" 34 : 6-8, 1962

    4 Lee, L. Y, "Supercritical Antisolvent Production of Biodegradable Micro- and Nanoparticles for Controlled Delivery of Paclitaxel" 125 (125): 96-106, 2008

    5 York, P, "Strategies for Particle Design Using Supercritical Fluid Technologies" 2 (2): 430-440, 1999

    6 Hu, J, "Spray Freezing into Liquid (SFL) Particle Engineering Technology to Enhance Dissolution of Poorly Water Soluble Drugs: Organic Solvent Versus Organic/Aqueous Co-Solvent Systems" 20 (20): 295-303, 2003

    7 Fromtling, R. A, "Recent Trends in the Discovery, Development and Evaluation of Antifungal Agents" J. R. Prous Science Publishers 1987

    8 Chattopadhyay, P, "Protein Nanoparticles Formation by Supercritical Antisolvent with Enhanced Mass Transfer" 48 (48): 235-244, 2002

    9 Chattopadhyay, P, "Production of Griseofulvin Nanoparticles Using Supercritical CO2 Antisolvent with Enhanced Mass Transfer" 228 (228): 19-31, 2001

    10 Chattopadhyay, P, "Production of Antibiotic Nanoparticles Using Supercritical CO2 as Antisolvent with Enhanced Mass Transfer" 40 (40): 3530-3539, 2001

    1 Avvaru, B, "Ultrasonic atomization: Effect of Liquid Phase Properties" 44 (44): 146-158, 2006

    2 Topp, M. N, "Ultrasonic Atomization-a Photographic Study of the Mechanism of Disintegration" 4 (4): 17-25, 1973

    3 Lang, R. J, "Ultrasonic Atomization of Liquids" 34 : 6-8, 1962

    4 Lee, L. Y, "Supercritical Antisolvent Production of Biodegradable Micro- and Nanoparticles for Controlled Delivery of Paclitaxel" 125 (125): 96-106, 2008

    5 York, P, "Strategies for Particle Design Using Supercritical Fluid Technologies" 2 (2): 430-440, 1999

    6 Hu, J, "Spray Freezing into Liquid (SFL) Particle Engineering Technology to Enhance Dissolution of Poorly Water Soluble Drugs: Organic Solvent Versus Organic/Aqueous Co-Solvent Systems" 20 (20): 295-303, 2003

    7 Fromtling, R. A, "Recent Trends in the Discovery, Development and Evaluation of Antifungal Agents" J. R. Prous Science Publishers 1987

    8 Chattopadhyay, P, "Protein Nanoparticles Formation by Supercritical Antisolvent with Enhanced Mass Transfer" 48 (48): 235-244, 2002

    9 Chattopadhyay, P, "Production of Griseofulvin Nanoparticles Using Supercritical CO2 Antisolvent with Enhanced Mass Transfer" 228 (228): 19-31, 2001

    10 Chattopadhyay, P, "Production of Antibiotic Nanoparticles Using Supercritical CO2 as Antisolvent with Enhanced Mass Transfer" 40 (40): 3530-3539, 2001

    11 Willams III R. O, "Process for Production of Nanoparticles and Microparticles by Spray Freezing into Liquid"

    12 Reverchon, E, "Process Parameters and Morphology in Amoxicillin Micro and Submicro Particles Generation by Supercritical Antisolvent Precipitation" 17 (17): 239-248, 2000

    13 Johnston, K. P, "Preparation of Drug Particles Using Evaporation Precipitation into Aqueous Solutions"

    14 Shekunov, B. Y, "Particle Formation by Mixing with Supercritical Antisolvent at High Reynolds Numbers" 56 (56): 2421-2433, 2001

    15 Werling, J. O, "Numerical Modeling of Mass Transfer in the Supercritical Antisolvent Process: Miscible Conditions" 18 (18): 11-24, 2000

    16 Martin, A, "Numerical Modeling of Jet Hydrodynamics, Mass Ttransfer, and Crystallization Kinetics in the Supercritical Antisolvent (SAS) Process" 32 (32): 203-219, 2004

    17 Liversidge, E. M, "Nanosizing: a Formulation Approach for Poorly-Water- Soluble Compounds" 18 (18): 113-120, 2003

    18 Gupta, R. B, "Method of Forming Nanoparticles and Microparticles of Controllable Size Uing Supercritical Fluids and Ultrasound"

    19 Warnock, D. W, "Itraconazole and Fluconazole: New Drugs for Deep Fungal Infection" 24 : 275-280, 1989

    20 Barrett, A. M, "Increasing the Dissolution Rate of Itraconazole Processed by Gas Antisolvent Techniques Using Polyethylene Glycol as a Carrier" 25 (25): 1274-1289, 2008

    21 Carretier, E, "Hydrodynamics of Supercritical Antisolvent Precipitation: Characterization and Influence on Particle Morphology" 42 (42): 331-338, 2003

    22 Thote, A. J, "Formation of Nanoparticles of a Hydrophilic Drug Using Supercritical Carbon Dioxide and Microencapsulation for Sustained Release" 1 (1): 85-90, 2005

    23 Roberts, C. J, "Engineering Pharmaceutical Stability with Amorphous Solids" 48 (48): 1140-1144, 2002

    24 Kim, Y. H, "Effect of Albumin on Physical Characteristics of Drug Particles Produced by Supercritical Fluid Technology" 182 (182): 354-363, 2008

    25 Sheehan, D. J, "Current and Emerging Azole Antifungal Agents," Clin" 12 (12): 40-79, 1999

    26 Jones, A. G, "Crystallization Process Systems" Butterworth- Heinemann 2002

    27 Rajan, R, "Correlations to Predict Droplet Size in Ultrasonic Atomisation" 39 (39): 235-255, 2001

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2027 평가 재인증평가 신청대상 (재인증)
    2021-01-01 등재 등재학술지 유지 (재인증) KCI등재
    2018-11-01 학술지명변경 한글명 : 청정기술 -> Clean Technology
    외국어명 : CLEAN TECHNOLOGY -> Clean Technology
    KCI등재
    2018-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2015-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2011-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2007-07-04 학술지명변경 한글명 : 한국청정기술학회지 -> 청정기술 KCI등재후보
    2007-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2005-01-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.26 0.26 0.25
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.29 0.28 0.4 0.1
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