• Title/Summary/Keyword: Energy storage properties

Search Result 591, Processing Time 0.031 seconds

Cooking Properties of Rice with Pigmented Rice Bran Extract (유색미 미강 추출물 첨가가 밥의 취반 특성에 미치는 영향)

  • Kim, Joo-Hee;Nam, Seok-Hyun;Kim, Mi-Hyun;Sohn, Jae-Keun;Kang, Mi-Young
    • KOREAN JOURNAL OF CROP SCIENCE
    • /
    • v.52 no.1
    • /
    • pp.60-68
    • /
    • 2007
  • This study was perform to examine the feasibility of cooking processing using the rice added the 70% ethanol extract of pigmented rice bran layer. Four rice samples, including normal rice, glutinous rice, pigmented-normal rice, and pigmented-glutinous rice were compared the properties of physico-chemical, texture, and sensory evaluation. Pigmented rice varieties had a higher amylose content, but shorter length in glucose chains than non-pigmented rice varieties. The enthalpy for gelatinization was found to increase in pigmented rice, which need more energy for gelatinization of starch in cooking. The hydrolysis rate by glucoamylase in rice added pigmented bran extract was higher than pigmented rice. Rice with pigmented bran extract had higher glutamine content, but lower asparagine content and no difference in fatty acid composition, which affect palatability. Cooked rice added pigmented bran extract was less retrograded than pigmented rice during the storage period. Moreover, cooked rice added pigmented bran extract was more acceptable in sensory evaluation. Based on the results, the use of rice added pigmented bran extract instead of pigmented rice in grain processed food have advantageous effects in palatability of polished rice and phytochemicals of pigmented non-polished rice. This study will help develop new health-promoting rice products.

Recent Synthetic Trends of Ti3C2Tx MXene (Ti3C2Tx MXene 합성 최신 연구 동향)

  • Suin Shim;Kwang Se Lee;Chang-Ho Choi
    • Applied Chemistry for Engineering
    • /
    • v.35 no.5
    • /
    • pp.372-378
    • /
    • 2024
  • MXene, a two-dimensional transition metal carbide, nitride, or carbonitride, possesses exceptionally thin and large surface areas while also exhibiting remarkable electrical and chemical properties. These properties have attracted considerable interest in the application of MXene, including energy storage devices, sensors, and catalysts. Since the discovery of MXene in 2011, a number of synthetic methods have been proposed. The synthesis of MXene can be mainly divided into two stages: an etching step and a delamination step. The type of terminations or surface defects are dependent on the synthetic method and have a significant impact on key properties such as electrical conductivity. Therefore, research on synthetic methods is essential for the industrialization of MXene. This review provides an overview of the various etching methods and delamination strategies employed in the synthesis of Ti3C2Tx MXene, including the commonly used hydrofluoric acid etching method and the fluorine-free method, which has recently emerged as an environmentally friendly alternative. We also address the latest research trends, challenges, and perspectives for the industrialization of MXene.trialization of MXene.

Transparent Nano-floating Gate Memory Using Self-Assembled Bismuth Nanocrystals in $Bi_2Mg_{2/3}Nb_{4/3}O_7$ (BMN) Pyrochlore Thin Films

  • Jeong, Hyeon-Jun;Song, Hyeon-A;Yang, Seung-Dong;Lee, Ga-Won;Yun, Sun-Gil
    • Proceedings of the Materials Research Society of Korea Conference
    • /
    • 2011.10a
    • /
    • pp.20.1-20.1
    • /
    • 2011
  • The nano-sized quantum structure has been an attractive candidate for investigations of the fundamental physical properties and potential applications of next-generation electronic devices. Metal nano-particles form deep quantum wells between control and tunnel oxides due to a difference in work functions. The charge storage capacity of nanoparticles has led to their use in the development of nano-floating gate memory (NFGM) devices. When compared with conventional floating gate memory devices, NFGM devices offer a number of advantages that have attracted a great deal of attention: a greater inherent scalability, better endurance, a faster write/erase speed, and more processes that are compatible with conventional silicon processes. To improve the performance of NFGM, metal nanocrystals such as Au, Ag, Ni Pt, and W have been proposed due to superior density, a strong coupling with the conduction channel, a wide range of work function selectivity, and a small energy perturbation. In the present study, bismuth metal nanocrystals were self-assembled within high-k $Bi_2Mg_{2/3}Nb_{4/3}O_7$ (BMN) films grown at room temperature in Ar ambient via radio-frequency magnetron sputtering. The work function of the bismuth metal nanocrystals (4.34 eV) was important for nanocrystal-based nonvolatile memory (NVM) applications. If transparent NFGM devices can be integrated with transparent solar cells, non-volatile memory fields will open a new platform for flexible electron devices.

  • PDF

Thermophysical Properties of Copper/graphite Flake Composites by Electroless Plating and Spark Plasma Sintering (무전해도금 및 방전 플라즈마 소결을 이용한 구리/흑연 복합재료 제조 및 열물성 특성 평가)

  • Lee, Jaesung;Kang, Ji Yeon;Kim, Seulgi;Jung, Chanhoe;Lee, Dongju
    • Journal of Powder Materials
    • /
    • v.27 no.1
    • /
    • pp.25-30
    • /
    • 2020
  • Recently, the amount of heat generated in devices has been increasing due to the miniaturization and high performance of electronic devices. Cu-graphite composites are emerging as a heat sink material, but its capability is limited due to the weak interface bonding between the two materials. To overcome these problems, Cu nanoparticles were deposited on a graphite flake surface by electroless plating to increase the interfacial bonds between Cu and graphite, and then composite materials were consolidated by spark plasma sintering. The Cu content was varied from 20 wt.% to 60 wt.% to investigate the effect of the graphite fraction and microstructure on thermal conductivity of the Cu-graphite composites. The highest thermal conductivity of 692 W m-1K-1 was achieved for the composite with 40 wt.% Cu. The measured coefficients of thermal expansion of the composites ranged from 5.36 × 10-6 to 3.06 × 10-6K-1. We anticipate that the Cu-graphite composites have remarkable potential for heat dissipation applications in energy storage and electronics owing to their high thermal conductivity and low thermal expansion coefficient.

Calcium Carbonate Precipitation by Bacillus and Sporosarcina Strains Isolated from Concrete and Analysis of the Bacterial Community of Concrete

  • Kim, Hyun Jung;Eom, Hyo Jung;Park, Chulwoo;Jung, Jaejoon;Shin, Bora;Kim, Wook;Chung, Namhyun;Choi, In-Geol;Park, Woojun
    • Journal of Microbiology and Biotechnology
    • /
    • v.26 no.3
    • /
    • pp.540-548
    • /
    • 2016
  • Microbially induced calcium carbonate precipitation (CCP) is a long-standing but re-emerging environmental engineering process for production of self-healing concrete, bioremediation, and long-term storage of CO2. CCP-capable bacteria, two Bacillus strains (JH3 and JH7) and one Sporosarcina strain (HYO08), were isolated from two samples of concrete and characterized phylogenetically. Calcium carbonate crystals precipitated by the three strains were morphologically distinct according to field emission scanning electron microscopy. Energy dispersive X-ray spectrometry mapping confirmed biomineralization via extracellular calcium carbonate production. The three strains differed in their physiological characteristics: growth at alkali pH and high NaCl concentrations, and urease activity. Sporosarcina sp. HYO08 and Bacillus sp. JH7 were more alkali- and halotolerant, respectively. Analysis of the community from the same concrete samples using barcoded pyrosequencing revealed that the relative abundance of Bacillus and Sporosarcina species was low, which indicated low culturability of other dominant bacteria. This study suggests that calcium carbonate crystals with different properties can be produced by various CCP-capable strains, and other novel isolates await discovery.

Principles and Comparative Studies of Various Power Measurement Methods for Lithium Secondary Batteries (리튬이차전지 출력측정법의 원리 및 측정법간 비교 연구)

  • Lee, Hye-Won;Lee, Yong-Min
    • Journal of the Korean Electrochemical Society
    • /
    • v.15 no.3
    • /
    • pp.115-123
    • /
    • 2012
  • As the market of lithium secondary batteries moves from mobile IT devices to large-format electric vehicles or energy storage systems, the strengthened battery specifications such as long-term reliability longer than 10 years, pack-level safety and tough competitive price have been required. Moreover, even though high power properties should also be achieved for hybrid electric vehicles, it is not easy to measure accurate power values at various conditions. Because it is difficult to choose a proper measurement method and its experimental condition is more complex comparing to capacity measurement. In addition, the power values are very sensitive to power duration time, state-of-charge (SOC) of cells, cut-off voltages, and temperatures, whereas capacity values are not. In this paper, we introduce three kinds of power measurement methods, hybrid pulse power characterization (HPPC) suggested by US FreedomCar, so-called J-pulse by Japan electric vehicle association standards (JEVS) and constant power measurement, respectively. Moreover, with pouch-type unit cells for HEV, experimental power data are discussed in order to compare each power measurement.

Study of Lithium Ion Capacitors Using Carbonaceous Electrode Utilized for Anode in Lithium Ion Batteries (이차전지 음극용 탄소 전극을 이용한 리튬이온 커패시터 연구)

  • Oh, Rye-Gyeong;Hong, Jung-Eui;Yang, Won-Geun;Ryu, Kwang-Sun
    • Applied Chemistry for Engineering
    • /
    • v.24 no.5
    • /
    • pp.489-493
    • /
    • 2013
  • The most common carbonaceous anode materials of lithium ion batteries (natural graphite, artificial graphite, hard carbon, and mesocarbon microbeads) were utilized as an electrode in lithium ion capacitors. It could be able to enhance the energy density of capacitors due to the intercalation of lithium ion. In this work, the properties of capacitors using the symmetric electrode were measured by organizing coin cell typed capacitors. Also, we made other capacitors having pre-intercalated lithium ions at one side of the electrode. The results of electrochemical measurements for these capacitors show that the storage capacitance was appeared. In other words, if the migration of lithium ions is supplied continuously in the electrolytes, lithium ions can be diffused into the carbonaceous materials. And it results in the improvement of capacitance compared to only using symmetric carbonaceous electrodes. Also, we conducted the same measurement with graphene oxide having a the large specific area in the same condition. Herein, we recognized that the large specific area is extremely important for supercapacitors.

Practical Challenges Associated with Catalyst Development for the Commercialization of Li-air Batteries

  • Park, Myounggu;Kim, Ka Young;Seo, Hyeryun;Cheon, Young Eun;Koh, Jae Hyun;Sun, Heeyoung;Kim, Tae Jin
    • Journal of Electrochemical Science and Technology
    • /
    • v.5 no.1
    • /
    • pp.1-18
    • /
    • 2014
  • Li-air cell is an exotic type of energy storage and conversion device considered to be half battery and half fuel cell. Its successful commercialization highly depends on the timely development of key components. Among these key components, the catalyst (i.e., the core portion of the air electrode) is of critical importance and of the upmost priority. Indeed, it is expected that these catalysts will have a direct and dramatic impact on the Li-air cell's performance by reducing overpotentials, as well as by enhancing the overall capacity and cycle life of Li-air cells. Unfortunately, the technological advancement related to catalysts is sluggish at present. Based on the insights gained from this review, this sluggishness is due to challenges in both the commercialization of the catalyst, and the fundamental studies pertaining to its development. Challenges in the commercialization of the catalyst can be summarized as 1) the identification of superior materials for Li-air cell catalysts, 2) the development of fundamental, material-based assessments for potential catalyst materials, 3) the achievement of a reduction in both cost and time concerning the design of the Li-air cell catalysts. As for the challenges concerning the fundamental studies of Li-air cell catalysts, they are 1) the development of experimental techniques for determining both the nano and micro structure of catalysts, 2) the attainment of both repeatable and verifiable experimental characteristics of catalyst degradation, 3) the development of the predictive capability pertaining to the performance of the catalyst using fundamental material properties. Therefore, under the current circumstances, it is going to be an extremely daunting task to develop appropriate catalysts for the commercialization of Li-air batteries; at least within the foreseeable future. Regardless, nano materials are expected to play a crucial role in this field.

Thermal and Mechanical Properties with Hydrolysis of PLLA/MMT Nanocomposite (PLLA/MMT 나노복합재료의 가수분해에 따른 열적, 기계적 물성)

  • Lee Jong Hun;Lee Yun Hui;Lee Doo Sung;Lee Youn-Kwan;Nam Jae-Do
    • Polymer(Korea)
    • /
    • v.29 no.4
    • /
    • pp.375-379
    • /
    • 2005
  • The morphology and therma]/viscoelastic characteristics were investigated for PLLA/MMT nanocomposite manufactured by incorporating inorganic nanosized silicate nanoplatelets into biodeuadable poly(l-lactic acid) (PLLA). The XRD difiactogram and TEM image may be regarded as a formation of homogeneously dispersed nanocomposites. The melting energy(${\Delta}H_m$) was increased during hydrolysis process because of increase of crystallinity. As MMT played a role of reinforcing agent, the storage modulus was increase in case of PLLA/MMT nanocomposite, it was well coincided with our previous results. From SEM image, many tiny pinholes formed by spinodal decomposition were observed on the surface, and the shape of nanocomposite was maintained during hydrolysis process. In this study, it was shown that the control of biodegradation rate, thermal/mechnical property was possibile by incorporating MMT.

Feasibility Study of Using Wood Pyrolysis Oil in a Dual-injection Diesel Engine (이중분사기가 장착된 디젤 엔진에서 목질계 열분해유의 적용 가능성에 관한 연구)

  • Lee, Seokhwan;Jang, Youngun;Kim, Hoseung;Kim, Taeyoung;Kang, Kernyong;Lim, Jonghan
    • Transactions of the Korean Society of Automotive Engineers
    • /
    • v.22 no.4
    • /
    • pp.1-9
    • /
    • 2014
  • The vast stores of biomass available in the worldwide have the potential to displace significant amounts of petroleum fuels. Fast pyrolysis of biomass is one of several paths by which we can convert biomass to higher value products. The wood pyrolysis oil (WPO) has been regarded as an alternative fuel for petroleum fuels to be used in diesel engine. However, the use of WPO in a diesel engine requires modifications due to low energy density, high water contents, high acidity, high viscosity, and low cetane number of the WPO. One possible method by which the shortcomings may be circumvented is to co-fire WPO with other petroleum fuels. WPO has poor miscibility with light petroleum fuel oils; the most suitable candidates fuels for direct fuel mixing are methanol or ethanol. Early mixing with methanol or ethanol has the added benefit of significantly improving the storage and handling properties of the WPO. For separate injection co-firing, a WPO-ethanol blended fuel can be fired through diesel pilot injection in a dual-injection dieel engine. In this study, the performance and emission characteristics of a dual-injection diesel engine fuelled with diesel (pilot injection) and WPO-ethanol blend (main injection) were experimentally investigated. Results showed that although stable engine operation was possible with separate injection co-firing, the fuel conversion efficiency was slightly decreased due to high water contents of WPO compare to diesel combustion.