• 제목/요약/키워드: Photosynthetic Hydrogen Production

검색결과 29건 처리시간 0.031초

석탄 합성가스로부터 효율적인 생물학적 수소 생산에 관한 연구

  • 강환구;전희진
    • KSBB Journal
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    • 제15권3호
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    • pp.268-273
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    • 2000
  • 본 연구에서는 R rubrum을 이용한 석탄합성 가스로부터 수소 생산공정에 있어서의 세포성장 및 일산화탄소 전환을 최적화하 는 여러 조건들을 조사하였다. 그 중 pH의 영향을 살펴보면 R. rubrum 세포성장에는 pH 6~7이 최적이었고 수소생산에는 pH 7 7-7.5이 최적이었으며 pH가 5.5에서는 세포성장이거의 이루어 지지 않았다. 또한 온도가 34 'C 이상 증가되었을 때 세포성장이 둔화되어 멈추고 안정적인 co 전환속도를 얻을 수 없으므로 $30^{\circ}C$가 R. rubrum 균주 성장과 co 전환에 최적온도라 생각된다. 또한 R. rubrum은 photosynthetic bacteria인데 이 세포의 성장에 는 벚의 세기가 1,700-2,400 Lux가 최적임을 알 수 있었고 co 전환에는 계속적인 빛의 공급이 꼭 필요하지는 않고 간헐적인 빛의 노출만으로도 충분하다고 생각된다. 또한 연속반응기를 이 용하여 600 rpm, $30^{\circ}C$, pH 7에서 합성가스 체류시간 110분시 co 전환율 약 53%정도를 얻을 수 있었다. 이 연구가 계속 진 행되어져서 photobioreactor의 개발, high pressure bioreactor의 이 용, 균주의 mutatIOn 및 전환능력 우수 균주 등의 selection을 수 행한다면 매우 높은 합성가스 전환율을 갖는 생물반응기 공정개 발도 가능하리라 생각된다.

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Alleviating Effects of Nitric Oxide on Cadmium Toxicity in White Poplar (Populus alba)

  • Semsettin Kulac;Yakup Cikili;Halil Samet;Ertugrul Filiz
    • Journal of Forest and Environmental Science
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    • 제40권1호
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    • pp.43-52
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    • 2024
  • Cadmium (Cd) is non-essential heavy metal that negatively affects plant metabolism. Nitric oxide (NO) is an increasingly important molecule for plant metabolism that makes signaling. In this study, it was aimed to investigate the alleviating effect of sodium nitroprusside (SNP) application as NO donor in white poplar (Populus alba) under Cd stress conditions. SNP and without SNP treatments increased the Cd accumulation in root tissue. While photosynthetic pigments (Chl a, Chl b, Chl a+b, and carotenoid) content decreased by only Cd application, SNP+Cd application decreased the rate of photosynthetic pigments reduction. When the results of Cd and Cd+SNP applications were evaluated for mineral (Fe, Zn, Mn and Cu) uptake, it was found that the positive effect of SNP was heterogeneously affected. Depending on SNP application, it was found that malondialdehyde (MDA) amount decreased in leaf in 100 µM Cd applications while hydrogen peroxide (H2O2) amount decreased in 100 and 500 µM Cd applications. When antioxidant enzyme activities were examined, it was found that catalase (CAT) and ascorbate peroxidase (APX) enzyme activities increased with 100 µM SNP applications under all Cd applications. As a result, it was found that SNP application under Cd stress generally supports physiological processes positively in white poplar, suggesting that NO molecule plays important alleviating roles in plant metabolism.

유기성 폐기물 및 폐수로부터 2단계 생물학적 수소생산 및 통합화 시스템 (Two-stage Biological Hydrogen Production form Organic Wastes and Waste-waters and Its Integrated System)

  • 김미선;윤영수
    • 한국수소및신에너지학회논문집
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    • 제13권1호
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    • pp.52-64
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    • 2002
  • 유기성 폐기물을 이용하여 생물학적 수소생산 통합화 시스템 연구를 수행하였다. 통합화 시스템은 유기성폐기물의 전처리, 2단계 혐기발효 및 광합성 배양으로 구성된 생물학적 수소생산 공정, 초임계수 가스화 공정, 생산된 가스의 저장, 분리 및 연료전지를 이용한 전력 생산으로 구성되었다. 실험에 사용된 유기성 폐자원은 식품공장 폐수, 과일폐기물, 하수슬러지이며, 전처리는 폐기물에 따라 열처리 및 물리적 처리를 하였으며, 전처리된 시료는 생물학적 수소생산 공정에 직접 적용되었다. Clostridium butyricum 및 메탄 생성조에서 발생하는 하수슬러지중의 미생물 복합체는 수소생산 혐기 발효공정에 사용되었으며, 광합성 수소생산 미생물인 홍색 비유황 세균은 광합성 배양에 사용되었다. 생물학적 공정에서 발생하는 미생물 슬러지는 초임계수 가스화 공정으로 수소를 발생하였으며, 슬러지 중의 COD를 저하시켰다. 생물학적 공정 및 초임계수 가스화 공정에서 발생하는 수소는 가스탱크에 가입상태로 저장한 후, 95%순도로 분리하였으며, 정제된 수소는 연료전지에 연결하여 전력 생산을 하였다.

Chlamydomonas reinhardtii 바이오매스를 이용한 생물학적 수소생산 (Biological hydrogen production using Chlamydomonas reindardtii biomass)

  • 김미선;백진숙;김선창
    • 한국수소및신에너지학회논문집
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    • 제15권4호
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    • pp.309-316
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    • 2004
  • Chlamydomonas reinhardtii UTEX 90 was cultivated with continuous supply of 2% $CO_2$ using TAP media at $25^\circ{C}$ and produced biomass 1.18 g of dry cell weight/L for 4 days. C. reinhardtii algal biomass(CAB) was concentrated to 20 times by volume and converted into hydrogen and organic acids by anaerobic fermentation using Clostridium butyricum. Organic acids in the fermentate of CAB were consecutively used to produce hydrogen by Rhodobacter sphaeroides KD 131 under the light condition. Approximately 52% of starch in the concentrated CAB which had 4-5.8, 24-26 and 6-7 g/L of starch, protein and fat, respectively was degraded by Cl. butyricum at $37^\circ{C}$. During this process, hydrogen and some organic acids, such as formate, acetate, propionate, and butyrate, respectively were produced. Further conversion of the organic acids in anaerobic fermentate of CAB by Rb. sphaeroides KD131 produced hydrogen from the anaerobic fermentate under the illumination of 8 klux using halogen lamp at $30^\circ{C}$. The result showed that hydrogen was evolved by the anaerobic conversion using Cl. butyricum and then by the photosynthetic fermentation using Rb. sphaeroides KD131. It indicated that the two-step conversion process produced the maximum amount of hydrogen from algal biomass which contained carbohydrate, protein, and fat via organic acids.

Biohydrogen Production from Carbon Monoxide and Water by Rhodopseudomonas palustris P4

  • Oh You-Kwan;Kim Yu-Jin;Park Ji-Young;Lee Tae Ho;Kim Mi-Sun;Park Sunghoon
    • Biotechnology and Bioprocess Engineering:BBE
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    • 제10권3호
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    • pp.270-274
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    • 2005
  • A reactor-scale hydrogen (H2) production via the water-gas shift reaction of carbon monoxide (CO) and water was studied using the purple nonsulfur bacterium, Rhodopseudomonas palustris P4. The experiment was conducted in a two-step process: an aerobic/chemoheterotrophic cell growth step and a subsequent anaerobic $H_2$ production step. Important parameters investigated included the agitation speed. inlet CO concentration and gas retention time. P4 showed a stable $H_2$ production capability with a maximum activity of 41 mmol $H_2$ g $cell^{-1}h^{-1}$ during the continuous reactor operation of 400 h. The maximal volumetric H2 production rate was estimated to be 41 mmol $H_2 L^{-1}h^{-1}$, which was about nine-fold and fifteen-fold higher than the rates reported for the photosynthetic bacteria Rhodospirillum rubrum and Rubrivivax gelatinosus, respectively. This is mainly attributed to the ability of P4 to grow to a high cell density with a high specific $H_2$ production activity. This study indicates that P4 has an outstanding potential for a continuous H2 production via the water-gas shift reaction once a proper bioreactor system that provides a high rate of gas-liquid mass transfer is developed.

Polyvinyl에 고정화된 Anabaena azollae에서의 수소생성 (Hydrogen Production in Polyvinyl-Immobilized Anabaena azollae Cells)

  • 박인호;송종호
    • KSBB Journal
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    • 제6권2호
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    • pp.181-187
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    • 1991
  • 본 연구에서는 PV에 아나베나세포를 흡착법에 의하여 고정화하였다. 진탕배양하면서 고정화한 겨웅에 비하여 반응기속에 배양액을 trickling 시키면서 배양하고 고정한 경우 높은 세포밀도를 보였다. PV에 고정화한 세포들의 생리적 활성을 조사한 결과 광합성능이 암처보관시에 free cell에 비하여 안정됨을 보였고, msx처리시의 암모니아의 방출도 증가하였다. 뿐만 아니라 고정화한 세포에서 광합성활성의 온도에 대한 내성이 증가하였으며 nitrogenase 효소 활성도 free cell에 비하여 크게 증가하였다. nitrogenase효소에 의한 연속적인 광수소발생을 조사한 결과 혐기적 조건하에서 연속적으로 수소가 생성됨을 볼 수 있었는데 그 발생양은 4mg의 엽록소에 해당하는 아나베나를 충진한 trickling-medium 반응기에서 6일동안 1.6ml의수소가 생성되었다.

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Improvement of Photoheterotrophic Hydrogen Production of Rhodobacter sphaeroides by Removal of B800-850 Light-Harvesting Complex

  • KIM EUI-JIN;YOO SANG-BAE;KIM MI-SUN;LEE JEONG K.
    • Journal of Microbiology and Biotechnology
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    • 제15권5호
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    • pp.1115-1119
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    • 2005
  • The photoheterotrophic $H_2$ production of Rhodobacter sphaeroides was significantly increased through disruption of the genes coding for uptake hydrogenase and poly-${\beta}$-hydroxybutyrate (PHB) synthase (Lee et al., Appl. Microbiol. Biotechnol. 60: 147-153, 2002). In this work, we further removed the B800-850 light-harvesting (LH) complex from the strain and found an increase in $H_2$ production at the light-saturating cell growth (${\ge}10$ Watts $[W]/m^2$). Neither the mutant nor the wild-type produced more $H_2$ at the brighter light. Accordingly, light does not appear to be limited for the $H_2$ production by the presence of B800-850. However, increase in the level of the spectral complexes resulted in decrease of $H_2$ production. Thus, although the B875 is essential for light harvesting, the consumption of cellular energy for the synthesis of B800-850 and the surplus LH complexes may reduce the energy flow into the $H_2$ production of R. sphaeroides.

Effect of Treatment with Selected Plant Extracts on the Physiological and Biochemical Parameters of Rice Plants under Salt Stress

  • Hyun-Hwa Park;Pyae Pyae Win;Yong-In Kuk
    • 한국작물학회지
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    • 제69권1호
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    • pp.1-14
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    • 2024
  • High soil salinity is the most severe threat to global rice production as it causes a significant decline in rice yield. Here, we investigated the effects of various plant extracts on rice plant stress associated with high salinity. Additionally, we examined various physiological and biochemical parameters such as growth, photosynthetic activity, chlorophyll content, and lipid peroxidation - in rice plants after treatment with selected plant extracts under salt stress conditions. Of the 11 extracts tested, four - soybean leaf, soybean stem, moringa (Moringa oleifera), and Undaria pinnatifida extracts - were found to effectively reduce salt stress. A reduction of only 3-23% in shoot fresh weight was observed in rice plants under salt stress that were treated with these extracts, compared to the 43% reduction observed in plants that were exposed to stress but not given plant extract treatments (control plants). The effectiveness varied with the concentration of the plant extracts. Water content was higher in rice plants treated with the extracts than in the control plants after 6 d of salt stress, but not after 4 d of salt stress. Although photosynthetic efficiency (Fv/Fm), electron transport rate (ETR), and the content of pigments (chlorophyll and carotenoid) varied based on the types and levels of stress and the extracts that the rice plants were treated with, generally, photosynthetic efficiency and pigment content were higher in the treated rice compared to control plants. Reactive oxygen species (ROS), such as superoxide radicals, hydrogen peroxide (H2O2), and malondialdehyde (MDA), increased as the duration of stress increased. ROS and MDA levels were lower in the treated rice than in the control plants. Proline and soluble sugar accumulation also increased with the duration of the stress period. However, proline and soluble sugar accumulation were lower in the treated rice than in the control plants. Generally, the values of all the parameters investigated in this study were similar, regardless of the plant extract used to treat the rice plants. Thus, the extracts found to be effective can be used to alleviate the adverse effects of stress on rice crops associated with high-salinity soils.

Sodium Hydrosulfide Enhances Drought Tolerance by Alleviating Oxidative Stress and Promoting Proline Accumulation in Brassica napus L.

  • Septi Anita Sari;Muchamad Muchlas;Bok-Rye Lee;Md Al Mamun;Tae-Hwan Kim
    • 한국초지조사료학회지
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    • 제44권3호
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    • pp.204-209
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    • 2024
  • Drought is one of the environmental factors inhibiting plant productivity and growth, leading to oxidative damage. This study aims to identify the role of sodium hydrosulfide (NaHS) as a hydrogen sulfide (H2S) donor in drought stress tolerance in Brassica napus. Drought-induced stress symptoms appeared eight days after treatment, showing wilted leaves and a significant reduction of leaf water potential. Drought-induced increase of lipid peroxidation was significantly reduced by NaHS application. NaHS-treated plants mitigated stress symptoms under drought conditions by reducing hydrogen peroxide (H2O2) content, confirmed with H2O2 localization in situ. Furthermore, NaHS promotes photosynthetic activity by maintaining chlorophyll and carotenoid content, thereby supporting plant growth under drought conditions. Pyrroline-5-carboxylate and proline contents were significantly increased by drought but further enhanced by NaHS treatment, indicating the important roles of proline accumulation in drought stress tolerance. In conclusion, this study provides valuable insight into the roles of NaHS in alleviating drought stress by reducing oxidative stress and promoting proline accumulation. Therefore, NaHS may serve as an effective strategy to enhance crop production under drought-stress conditions.