• 제목/요약/키워드: functional versatility

검색결과 26건 처리시간 0.022초

사롱의 유형과 가변성에 관한 연구 (A Study on the Classification and Versatility of Sarong)

  • 신혜성;이은진
    • 복식
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    • 제63권5호
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    • pp.35-50
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    • 2013
  • This thesis is based on the study of formativeness and versatility of Sarong. For the aim of the research, Sarongs were classified into two types: rectangular and tube, using its original form as the basis. These two types of Sarongs were divided into more detailed groups depending on the purposes of attire, such as skirts, dresses, and capes. To look into the formativeness and versatility of Sarong, the usage of wear and expression methods were observed based on these categories. The following results were found regarding the versatility of Sarong: First, Sarong has a wide degree of versatility in terms of usage. It can be worn as a skirt, a head scarf, a dress, a cape, or used as a carrier or even a sleeping bag, based on one's intention. The change of usage is often accompanied with the change of forms, as can be shown by the longyi of Myanmar, the tube type Sarong, which is used as briefs. Second, Sarong has a wide degree of versatility in terms of function. Variations of instrumental and expressive function of Sarong are observed simultaneously. The physical function sometimes coincides with the changes of usage as mentioned above. The way that Sarong's are expressed in different social situations changes depending on the wearer's social status, religion, or origin. So by looking at the way a Sarong is worn, others can tell if a person is going to social events such as festivals and weddings. Third, Sarong has a wide degree of versatility in terms of design. However, even if same usage and function is pursued, the design can be different based on an individual. This is because the external change of Sarong is affected by individuality or aesthetic sense of the wearer.

바이오 세라믹 실리카를 이용한 복합 나노입자 구조체의 합성 (Synthesis of complex nanoparticles using bioceramic silica)

  • 윤석영;이정헌
    • 세라미스트
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    • 제21권3호
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    • pp.283-292
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    • 2018
  • Here, we introduce various type of inorganic nanostructure synthesized with functional nanoparticles and silica. From two decades ago, functional inorganic nanoparticles have been synthesized and highlighted, now we moved to next level of wet-chemical synthesis. By integrating functional nanoparticles with silica, we were able to synthesize multi-functional nanostructure, which expand the applications of nanoparticles to catalyst, drug carrier, sensors. In this context, silica has been spotlighted due to its versatility. Silica has highly biocompatible, relatively transparent and stable under harsh conditions. Thus it can be used as good supporter to synthesize complex multi-functional nanostructure when mixed with other functional nanoparticles. A various shape of complex nanostructures have been synthesized including core-shell type, yolk-shell type and janus type etc. In this paper, we have described the purposes of synthesizing silica noncomplex and various case studies for biomedical applications and self-assembly.

Fabrication of Functional Nanomaterials by Peptide Self-Assembly

  • 박찬범
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.8.1-8.1
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    • 2009
  • The self-assembly of peptide-based building blocks into nanostructures is an attractive route for fabricating novel materials because of their capacity for molecular recognition and functional flexibility as well as the mild conditions required in the fabrication process. Among various peptide-based building blocks forming nanostructures, the simplest building blocks are aromatic dipeptides like diphenylalanine, which can readily self-assemble into nanotubes in aqueous solutions at ambient conditions. Recently, we have developed a high-temperature solid-phase self-assembly process for diphenylalanine. Through this novel process, we succeeded in the growth of vertically well-aligned, uniform nanowires from amorphous peptide thin film. To demonstrate the versatility of our approach, we also fabricated a micropattern of peptide nanowires by combining our solid-phase growth method and simple soft lithographic techniques. We believe that our studies on peptide self-assembly will provide a new horizon for peptide-based nanofabrication.

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Nucleic Acid Aptamers: New Methods for Selection, Stabilization, and Application in Biomedical Science

  • Kong, Hoon Young;Byun, Jonghoe
    • Biomolecules & Therapeutics
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    • 제21권6호
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    • pp.423-434
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    • 2013
  • The adoption of oligonucleotide aptamer is well on the rise, serving an ever increasing demand for versatility in biomedical field. Through the SELEX (Systematic Evolution of Ligands by EXponential enrichment), aptamer that can bind to specific target with high affinity and specificity can be obtained. Aptamers are single-stranded nucleic acid molecules that can fold into complex three-dimensional structures, forming binding pockets and clefts for the specific recognition and tight binding of any given molecular target. Recently, aptamers have attracted much attention because they not only have all of the advantages of antibodies, but also have unique merits such as thermal stability, ease of synthesis, reversibility, and little immunogenicity. The advent of novel technologies is revolutionizing aptamer applications. Aptamers can be easily modified by various chemical reactions to introduce functional groups and/or nucleotide extensions. They can also be conjugated to therapeutic molecules such as drugs, drug containing carriers, toxins, or photosensitizers. Here, we discuss new SELEX strategies and stabilization methods as well as applications in drug delivery and molecular imaging.

Development of Stretchable Electronics Using Geometric Strategies and Applications

  • Seungkyu Lee;Kyusoon Pak;Jun Chang Yang;Steve Park
    • 센서학회지
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    • 제32권6호
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    • pp.370-377
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    • 2023
  • Soft and stretchable electronics, equipped with diverse functional devices, have recently garnered attention owing to their versatility in applications such as stretchable displays, flexible batteries, and electronic skin (e-skin). A fundamental challenge in realizing stretchable electronics lies in conferring the necessary flexibility to crucial electrical components such as electrodes and devices. However, the prevalent electronic materials, exhibit limited stretchability, presenting a significant obstacle to the advancement of soft and stretchable electronics. To overcome this challenge, various strategies rooted in geometrical engineering have been explored to enhance the adaptability of rigid materials. This study delves into the realm of geometrical engineering by, examining techniques such as serpentine patterns, kirigami-inspired designs, and island structures, with a keen focus on recent progress and future prospects.

Gold Nanostructure-Based Laser Desorption/Ionization Time-of-Flight Mass Spectrometry for Analysis of Small Biomolecules

  • Hye-Sun Cho;Tae Hoon Seo;Ji Hun Park;Young-Kwan Kim
    • Mass Spectrometry Letters
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    • 제15권1호
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    • pp.26-39
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    • 2024
  • Gold nanostructures (Au NSs) are useful and interesting matrices for mass spectrometric analysis of various biomolecules based on organic matrix-free laser desorption/ionization time-of-flight mass spectrometry (LDI-TOF-MS). Au NSs provide high efficiency and versatility in LDI-TOF-MS analysis based on their well-established synthesis and surface functionalization, large surface area, high laser absorption capacity, and photothermal conversion efficiency. Therefore, Au NSs based LDI-TOF-MS can be a facile, functional, and efficient analytical method for important small biomolecules owing to its simple preparation, rapid analysis, salt-tolerance, signal reproducibility, and quantitative analysis. This review chronologically summarizes the important advance of Au NSs-based LDI-TOF-MS platforms in terms of in-depth mechanism, signal enhancement, quantitative analysis, and disease diagnosis.

Reducing the donor site morbidity in radial forearm free flaps by utilizing a narrow radial forearm free flap

  • Shaikh, Safdar Ali;Bawa, Amber;Shahzad, Noman;Yousufzai, Zara;Ghani, Muhammad Shahab
    • Archives of Plastic Surgery
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    • 제45권4호
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    • pp.345-350
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    • 2018
  • Background The radial forearm free flap (RFFF) has remained a leading choice of many plastic surgeons as a fasciocutaneous flap due to its versatility, pedicle length, and simple elevation technique. However, donor site morbidity has led many reconstructive surgeons to limit their use of the RFFF and to use other flaps instead. We propose that using a narrow RFFF (nRFFF) decreases the aesthetic and functional morbidity of the donor site. Methods We report our experiences with the nRFFF from April 2012 through May 2015 at the Department of Plastic, Reconstructive, and Hand Surgery at Liaquat National Hospital, Karachi. The donor defects were closed primarily. The Stony Brook Scar Evaluation Scale and comparison with the contralateral hand were used to assess aesthetic and functional outcomes, respectively. Results A total of 24 patients underwent nRFFF procedures during the study period. The donor arm showed excellent motor function in 22 cases (91.7%), and very good function in the remaining two cases (8.3%). The aesthetic outcomes were excellent in four patients (16.6%), very good in eight patients (33.3%), good in 10 patients (41.6%), and fair in two patients (8.3%) who developed a hypertrophic scar. All flaps were successful and there were no cases of partial or complete loss. Conclusions For small to medium-sized soft tissue defects, the nRFFF had acceptable outcomes due to its thinness, pliability, and major reduction in donor site aesthetic and functional morbidity.

다기능 NSOM (mf-NSOM) 을 이용한 나노 구조 재료 분석에 관한 원리와 응용 (Fundamentals and Applications of Multi-functional NSOM Technology to Characterization of Nano Structured Materials)

  • 이우진;변수일
    • 전기화학회지
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    • 제7권2호
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    • pp.108-123
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    • 2004
  • 최근 근접장 광학주사현미경 (NSOM)을 이용한 재료의 표면 및 구조 분석은 생물학에서 재료과학에까지 광범위하게 응용되고 있다. 본 총설에서는 기존의 NSOM을 여러가지 현미경법 (광학, 형광, 전자 및 전기화학 현미경 관찰법)과 접목하여 구성한 다기능 NSOM (multi-functional NSOM, mf-NSOM)을 이용, 나노 재료의 고분해능 이미징에 대한 원리와 응용을 고찰하였다. 본 mf-NSOM 기술을 이용하여 실제로 Al합금 및 다결정 Ti 표면에서의 공식 (pitting)을 일으키는 취약 지역을 광학적으로 분석한 결과를 기술하였다. 또한, mf-NSOM과 레이저 기술을 통해 나노 Ag 입자를 형성하고 실시간 분석한 연구결과에 대해서도 소개하고자 한다.

조절 라디칼 중합법에 의한 폴리올레핀 기반 분절 공중합체의 제조 (Preparation of Polyolefin Based Segmented Copolymers Through Controlled Radical Polymerization Technique)

  • 홍성철;이성훈;조현철
    • Elastomers and Composites
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    • 제44권3호
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    • pp.209-221
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    • 2009
  • 폴리올레핀은 뛰어난 물성과 낮은 가격으로 인하여 가장 큰 시장을 가진 범용 고분자이다. 그러나, 폴리올레핀은 대표적인 비극성 고분자로, 다른 물질과의 상호 작용이 중요한 상용화제, 개질제, 접착제 등의 용도로는 그 사용이 제한될 수 밖에 없다. 따라서, 보다 극성을 가진 고분자 사슬을 폴리올레핀에 블록 또는 그라프트 공중합체의 형태로도입함으로써 기능성 폴리올레핀 하이브리드를 제조하려는 노력이 계속되어 왔다. 특히, 잘 제어된 구조와 조성을 가진 공중합체를 제조하기 위하여 리빙라디칼 중합법이 사용될 수 있으며, 그 중 조절라디칼 중합법은 중합을 잘 제어할 수 있다는 장점 이외에 다양한 단량체종과 중합 공정에 적용될 수 있다는 점에서 많은 주목을 받고 있다. 이에 따라, 본 리뷰 논문에서는 조절라디칼 중합법을 이용한 폴리올레핀 기반 블록 또는 그라프트 공중합체의 제조에 대하여 정리해 보았다. 폴리이소부틸렌, 폴리에틸렌, 폴리프로필렌 등의 비극성 범용고분자들과 폴리아크릴레이트, 폴리메타아크릴레이트, 폴리스티렌 등의 극성 고분자들과의 하이브리드를 통한 기능성 폴리올레핀의 제조에 대하여 정리하였다.

Structural flexibility of Escherichia coli IscU, the iron-sulfur cluster scaffold protein

  • Kim, Bokyung;Kim, Jin Hae
    • 한국자기공명학회논문지
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    • 제24권3호
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    • pp.86-90
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    • 2020
  • Iron-sulfur (Fe-S) clusters are one of the most ancient yet essential cofactors mediating various essential biological processes. In prokaryotes, Fe-S clusters are generated via several distinctive biogenesis mechanisms, among which the ISC (Iron-Sulfur Cluster) mechanism plays a house-keeping role to satisfy cellular needs for Fe-S clusters. The Escherichia coli ISC mechanism is maintained by several essential protein factors, whose structural characterization has been of great interest to reveal mechanistic details of the Fe-S cluster biogenesis mechanisms. In particular, nuclear magnetic resonance (NMR) spectroscopic approaches have contributed much to elucidate dynamic features not only in the structural states of the protein components but also in the interaction between them. The present minireview discusses recent advances in elucidating structural features of IscU, the key player in the E. coli ISC mechanism. IscU accommodates exceptional structural flexibility for its versatile activities, for which NMR spectroscopy was particularly successful. We expect that understanding to the structural diversity of IscU provides critical insight to appreciate functional versatility of the Fe-S cluster biogenesis mechanism.