[출처] http://www.sciencedaily.com/releases/2014/10/141026195244.htm


Breakthrough in molecular electronics paves way for new generation of DNA-based computer circuits

Date:
October 26, 2014
Source:
Hebrew University of Jerusalem
     141026195244-large.jpg


Paving the way for a new generation of DNA-based computer circuits: Prof. Danny Porath, the Etta and Paul Schankerman Professor in Molecular Biomedicine at the Hebrew University of Jerusalem.
Credit: Hebrew University

In a paper published today in Nature Nanotechnology, an international group of scientists announced the most significant breakthrough in a decade toward developing DNA-based electrical circuits.

The central technological revolution of the 20th century was the development of computers, leading to the communication and Internet era. The main measure of this evolution is miniaturization: making our machines smaller. A computer with the memory of the average laptop today was the size of a tennis court in the 1970s.

Yet while scientists made great strides in reducing of the size of individual computer components through microelectronics, they have been less successful at reducing the distance between transistors, the main element of our computers. These spaces between transistors have been much more challenging and extremely expensive to miniaturize -- an obstacle that limits the future development of computers.

Molecular electronics, which uses molecules as building blocks for the fabrication of electronic components, was seen as the ultimate solution to the miniaturization challenge. However, to date, no one has actually been able to make complex electrical circuits using molecules. The only known molecules that can be pre-designed to self-assemble into complex miniature circuits, which could in turn be used in computers, are DNA molecules. Nevertheless, so far no one has been able to demonstrate reliably and quantitatively the flow of electrical current through long DNA molecules.

Now, an international group led by Prof. Danny Porath of the Hebrew University of Jerusalem reports reproducible and quantitative measurements of electricity flow through long molecules made of four DNA strands, signaling a significant breakthrough towards the development of DNA-based electrical circuits. The research, which could re-ignite interest in the use of DNA-based wires and devices in the development of programmable circuits, appears in the journal Nature Nanotechnology under the title "Long-range charge transport in single G-quadruplex DNA molecules."

Prof. Porath is affiliated with the Hebrew University's Institute of Chemistry and its Center for Nanoscience and Nanotechnology. The molecules were produced by the group of Alexander Kotlyar from Tel Aviv University, who has been collaborating with Porath for 15 years. The measurements were performed mainly by Gideon Livshits, a PhD student in the Porath group, who carried the project forward with great creativity, initiative and determination. The research was carried out in collaboration with groups from Denmark, Spain, US, Italy and Cyprus.

경축! 아무것도 안하여 에스천사게임즈가 새로운 모습으로 재오픈 하였습니다.
어린이용이며, 설치가 필요없는 브라우저 게임입니다.
https://s1004games.com

According to Porath, "This research paves the way for implementing DNA-based programmable circuits for molecular electronics, a new generation of computer circuits that can be more sophisticated, cheaper and simpler to make."

The research was supported by the European Commission, the European Science Foundation, the Israel Science Foundation, the Binational Science Foundation, the Minerva Center for Bio-Hybrid complex systems, the Institute for Advanced Studies of the Hebrew University of Jerusalem, the Italian Institute of Technology project MOPROSURF, the Fondazione Cassa di Risparmio di Modena, the Office of Naval Research, and the National Science Foundation.

Story Source:

The above story is based on materials provided by Hebrew University of Jerusalem. Note: Materials may be edited for content and length.

Journal Reference:

  1. Gideon I. Livshits, Avigail Stern, Dvir Rotem, Natalia Borovok, Gennady Eidelshtein, Agostino Migliore, Erika Penzo, Shalom J. Wind, Rosa Di Felice, Spiros S. Skourtis, Juan Carlos Cuevas, Leonid Gurevich, Alexander B. Kotlyar, Danny Porath. Long-range charge transport in single G-quadruplex DNA molecules. Nature Nanotechnology, 2014; DOI: 10.1038/nnano.2014.246




본 웹사이트는 광고를 포함하고 있습니다.
광고 클릭에서 발생하는 수익금은 모두 웹사이트 서버의 유지 및 관리, 그리고 기술 콘텐츠 향상을 위해 쓰여집니다.
번호 제목 글쓴이 날짜 조회 수
22 환경 파괴 주범 비닐봉지 먹어치우는 애벌레 발견 file 졸리운_곰 2017.05.01 197
21 혈당조절을 위한 이식 가능한 인공 췌장(pancreas) 개발 졸리운_곰 2015.10.01 449
20 세포 내 물류 시스템을 조절하는 메커니즘 새롭게 발견 file 졸리운_곰 2015.09.27 295
19 인공지능에 의해 발견된 플라나리아의 재생 모델 file 졸리운_곰 2015.06.09 686
18 세포핵을 탐침하는 나노기둥 file 졸리운_곰 2015.06.07 281
17 가위바위보를 이용하여 해명한 자연계의 진화게임 file 졸리운_곰 2015.06.07 392
16 해양천연물 유래성분과 콜레스테롤의 결합으로 세포형태 이상이 일어나는 것 발견 file 졸리운_곰 2015.05.31 287
15 신경세포가 죽는 주요 경로 확인 file 졸리운_곰 2015.05.11 465
14 바이오닉 애벌레 구조의 자체 크롤링 구동 장비 개발 file 졸리운_곰 2015.05.10 609
13 박테리아를 좀비로 만드는 은 file 졸리운_곰 2015.05.10 324
12 죽은 세포를 리셋하는 법 졸리운_곰 2015.05.10 374
11 세포들이 의사소통하는 법 file 졸리운_곰 2015.01.20 381
10 도구를 만드는데 도움을 준 언어능력 file 졸리운_곰 2015.01.20 431
9 만성 통증(쪽팔림/쪽주는 이경규) 환자의 뇌에 신경염증 file 졸리운_곰 2015.01.15 434
8 플라스틱을 분해하는 벌레 유래의 위장 박테리아 file 졸리운_곰 2014.12.08 491
7 뇌 코딩 정서의 모드를 해석하는 연구 file 졸리운_곰 2014.10.14 549
6 5천만년 동안 변하지 않은 동물의 먹이찾기 file 졸리운_곰 2014.07.21 427
5 세포 분열(cell division) 프로세스에 대한 연구 file 졸리운_곰 2014.07.21 456
4 해바라기는 오로지 태양만 따라 움직일까? file 졸리운_곰 2014.07.21 457
3 암세포를 정조준하는 은 나노입자 file 졸리운_곰 2014.06.28 386
대표 김성준 주소 : 경기 용인 분당수지 U타워 등록번호 : 142-07-27414
통신판매업 신고 : 제2012-용인수지-0185호 출판업 신고 : 수지구청 제 123호 개인정보보호최고책임자 : 김성준 sjkim70@stechstar.com
대표전화 : 010-4589-2193 [fax] 02-6280-1294 COPYRIGHT(C) stechstar.com ALL RIGHTS RESERVED