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研究領(lǐng)域:低維納米材料/納電子學(xué)/固態(tài)化學(xué)/無機(jī)化學(xué)/表面物理化學(xué)
獲得學(xué)位:
1981年,學(xué)士,F(xiàn)ranklin and Marshall學(xué)院
1985年,博士,斯坦福Stanford大學(xué)
工作經(jīng)歷:
1985-87 加州理工大學(xué)(CALTECH), 博士后
1987-90 哥倫比亞大學(xué), 助教
1990-91 哥倫比亞大學(xué), 副教授
1991-99 哈佛大學(xué), 教授
1999-至今 哈佛大學(xué), Mark Hyman Jr.教授
現(xiàn)屬下列學(xué)會成員:
美國化學(xué)會會員
美國物理學(xué)會會員
美國先進(jìn)科學(xué)協(xié)會會員
材料研究學(xué)會會員
現(xiàn)是下列國際刊物的主編、副主編或編委:
Advances in Nanoscale Materials and Nanotechnology
AIP/APS Virtual Journal of Nanoscale Science and Technology
Applied Physics Letters (IF:3.844)
Encyclopedia of Nanoscience and Nanotechnology
Fullerenes, Nanotubes and Carbon Nanostructures
Journal of Applied Physics (IF:2.168)
Journal of Nanoscience and Nanotechnology (IF:1.563)
Journal of Physical Chemistry
Nanotechnology Opportunity Report
Nano Letters (IF:13.198)
哈佛大學(xué)化學(xué)系教授Charles M. Lieber (中譯名:查爾斯-烈波),長期從事原子力顯微鏡、隧道掃描電鏡、高溫超導(dǎo)材料、納米電子學(xué)、納米材料的研究,是目前國際上最權(quán)威、最活躍、最著名、年輕有為的納米科學(xué)家和材料學(xué)家之一,對國際納米科技的發(fā)展做出了重大貢獻(xiàn),在國際上享有盛譽(yù),具有極高的造詣。在納米科技研究領(lǐng)域中,可以說沒有人不知道他的名字或他的研究工作。查爾斯-烈波教授真可謂是無人不知、無人不曉的國際頂尖的納米科學(xué)家之一。他的研究工作站在學(xué)術(shù)最前沿,領(lǐng)導(dǎo)著納米科學(xué)技術(shù)發(fā)展的潮流。以2001年為例,一年內(nèi)他領(lǐng)導(dǎo)的科研小組就在Science、Nature刊物上發(fā)表論文10篇。查爾斯-烈波教授在納米科學(xué)和技術(shù)研究領(lǐng)域曾做出過一系列重大貢獻(xiàn),他曾發(fā)明了納米鑷子等納米工具、P-N納米二極管等;最近更是活躍在納米碳管、納米線的研究領(lǐng)域,去年他的研究成果被美國科技新聞評選為國際十大科學(xué)重大進(jìn)展之一。鑒于查爾斯o烈波教授的卓越貢獻(xiàn),他獲得了大量獎勵。值得一提的是,他曾獲得納米技術(shù)領(lǐng)域最高大獎-“費(fèi)曼獎“、國際材料學(xué)會“杰出青年獎“、美國“總統(tǒng)獎“、美國化學(xué)會“純化學(xué)獎“、美國科學(xué)基金會“創(chuàng)造獎“等等。他在各種重要大型國際會議和美國化學(xué)會會議上所做的特邀大會報(bào)告就達(dá)40次之多。近年來,查爾斯-烈波教授教授先后發(fā)表學(xué)術(shù)論文200余篇,其中包括在國際最權(quán)威刊物Nature、Science上發(fā)表的論文41篇,在化學(xué)界、物理界最高學(xué)術(shù)刊物J. Am. Chem. Soc.,Phys. Rew. Lett.上發(fā)表論文達(dá)40篇。
查爾斯-烈波教授早年從事表面物理化學(xué)研究,曾建立了電子掃描隧道(STM)的表面電子探針結(jié)構(gòu)理論,奠定了STM的基礎(chǔ),為STM的發(fā)展做出了重要貢獻(xiàn)。為此,哈佛大學(xué)直接聘他為正教授,現(xiàn)在他已成為哈佛大學(xué)最高終身馬克-黑曼(Mark Hyman)教授,是極有希望獲得諾貝爾獎的國際著名教授之一。
查爾斯-烈波教授對中國有著深厚的感情,曾培養(yǎng)了一大批國際著名的中國學(xué)者。他們都活躍在國際納米科技研究的第一線,如現(xiàn)在斯坦福大學(xué)任教、“國家杰出青年基金“獲得者戴洪杰教授、伯克利大學(xué)“國家杰出青年基金“獲得者楊培東教授、喬治亞理工的張忠菊教授(原復(fù)旦大學(xué)化學(xué)系學(xué)生)、北京清華大學(xué)“973“首席科學(xué)家、教育部“長江計(jì)劃“成就獎獲得者范守善教授等。他為中國也培養(yǎng)了許多青年科學(xué)家,他們最近已回中國擔(dān)任全職職位,如北京大學(xué)的曹安源博士、中國國家納米中心的方英博士和宮建茹博士。
在他的大力支持和精心指導(dǎo)下“武漢理工大學(xué)-哈佛大學(xué)納米聯(lián)合重點(diǎn)實(shí)驗(yàn)室”也即將建成,并將由Lieber教授擔(dān)任實(shí)驗(yàn)室主任。
Lieber教授在過去的10年中,先后在Nature、Science雜志發(fā)表了40篇納米研究論文,被國際學(xué)者普遍公認(rèn)為是納米科技領(lǐng)域的開創(chuàng)者之一;曾獲美國總統(tǒng)青年科技獎、2002年美國物理學(xué)會McGroddy獎、2002年美國材料科學(xué)學(xué)會獎、2001年納米技術(shù)Feynman獎等30余項(xiàng)科技與榮譽(yù)獎勵。
獲獎情況:
2001 納米技術(shù)費(fèi)曼(Feynman)獎(納米科學(xué)技術(shù)研究領(lǐng)域最高獎項(xiàng))
2000 國際聯(lián)合純粹應(yīng)用化學(xué)會研究員
1997 美國先進(jìn)科學(xué)協(xié)會研究員
1996 美國物理會研究員
1996 美國科學(xué)基金創(chuàng)造獎
1995 美國化學(xué)會Leo Hendrik Baekeland獎(材料化學(xué)最高獎項(xiàng))
1994-1995 哈佛大學(xué)George Ledlie獎
1994 英國哥倫比亞大學(xué)材料科學(xué)3M演講獎
1994 富蘭克林Marshall學(xué)院Merck講師獎
1993 材料研究學(xué)會杰出青年研究獎
1992 美國化學(xué)會純粹化學(xué)獎
1992 Dinkewalter獎
1990-1995 Camille 和 Henry Dreyfus教師學(xué)者獎
1990 威爾遜(Wilson)獎
1990-1992 斯隆(Alfred P. Sloan)研究員
1988-1993 David和Lucile Packard研究員
1988-1993 先進(jìn)青年研究獎
1987 Dreyfus 基金杰出才能獎
1985-1987 NIH博士后研究會成員
1985 Joseph W. Richards電化學(xué)會成員
1981 B. A. 學(xué)位,Magna Cum Laude化學(xué)榮譽(yù)
1981 美國化學(xué)家協(xié)會杰出資格獎
1981 Theodore Saulnier研究獎
1981 卓越化學(xué)貢獻(xiàn)Pentathalon 獎?wù)?
1981 被選為Phi Beta Kappa 化學(xué)獎
共發(fā)表論文200余篇。曾被邀請?jiān)诟鞣N重要國際學(xué)術(shù)會議和美國化學(xué)會、物理學(xué)會、材料學(xué)會做大會邀請報(bào)告達(dá)40次。多次在Acc. Chem. Res., Am. Sci. 等國際著名刊物上撰寫綜述性論文10篇以上,論文被引用7000次以上。
Charles M. Lieber 教授發(fā)表的代表性論文: (這些文字比較古老,摘幾篇即可)
1. C. M. Lieber and N. S. Lewis, “Catalytic Reduction of CO2 at Carbon Electrodes Modified with Cobalt Phthalocyanine“. J. Am. Chem. Soc. 106, 5033 (1984).
2. C. M. Lieber, C. M. Gronet and N. S. Lewis, “Evidence Against Surface State Limitations on the Efficiency of p-Si/CH3CN Junctions“. Nature 307, 533 (1984).
3. C. M. Lieber and N. S. Lewis, “Probing Polymer Effects on Chemical Reactivity: Ligand Substitution Kinetics of Ru(NH3)5(H2O)2+ in Nafion Films“. J. Am. Chem. Soc. 107, 7190 (1985).
4. C. M. Lieber, M. Schmidt, and N. S. Lewis, “Kinetic Studies of Ligand Substitution Rates for the Ru(NH3)5(H2O)2+ ion in Nafion Films“. J. Am. Chem. Soc. 108, 6103 (1986).
5. C. M. Lieber, J. L. Karas, and H. B. Gray, “Reversible Long-Range Electron Transfer in Ruthenium-Modified Sperm Whale Myoglobin“. J. Am. Chem. Soc. 109, 3778 (1987).
6. J. L. Karas, C. M. Lieber, and H. B. Gray, “Free Energy Dependence of the Rate of Long-Range Electron Transfer in Proteins. Experimental Execuation of the Reorganization Energy in Ruthenium-Modified Myoglobin“. J. Am. Chem. Soc. 110, 599 (1988).
7. X. L. Wu and C. M. Lieber, “Determination of the Structural and Electronic Properties of Surfaces using Scanning Tunneling Microscopy Coupled with Chemical Modifications“ J. Am. Chem. Soc. 110, 5200 (1988).
8. X. L. Wu, P. Zhou and C. M. Lieber, “Surface Electronic Properties Probed with Tunneling Microscopy and Chemical Doping“. Nature 335, 55 (1988).
9. X. L. Wu, P. Zhou and C. M. Lieber, “Determination of the Local Effect of Impurities on the Charge Density Wave Phase in TaS2 by Scanning Tunneling Microscopy“ Phys. Rev. Lett. 61, 2604 (1988).
10. X. L. Wu and C. M. Lieber, “The Hexagonal Domain-Like Charge Density Wave Phase of TaS2 Determined by Scanning Tunneling Microscopy“. Science 243, 1703 (1989).
11. X. L. Wu and C. M. Lieber, “Scanning Tunneling Investigations Investigations of a New Charge Density Wave Phase in Niobium-Doped Tantalum Disulfide“. J. Am. Chem. Soc. 111, 2731 (1989)
Nanobeam Mechanics: Elasticity, Strength, and Toughness of Nanorods and Nanotubes (Citations: 724)
Eric W. Wong, Paul E. Sheehan, Charles M. Lieber
Journal: Science , vol. 277, no. 5334, pp. 1971-1975, 1997
Nanowire Nanosensors for Highly Sensitive and Selective Detection of Biological and Chemical Species (Citations: 675)
Yi Cui, Qingqiao Wei, Hongkun Park, Charles M. Lieber
Journal: Science , vol. 293, no. 5533, pp. 1289-1292, 2001
A Laser Ablation Method for the Synthesis of Crystalline Semiconductor Nanowires (Citations: 521)
Alfredo M. Morales, Charles M. Lieber
Journal: Science , vol. 279, no. 5348, pp. 208-211, 1998
Functional Nanoscale Electronic Devices Assembled Using Silicon Nanowire Building Blocks (Citations: 439)
Y. Cui, C. Lieber
Journal: Science , vol. 291, no. 5505, pp. 851-853, 2001
Logic Gates and Computation from Assembled Nanowire Building Blocks (Citations: 419)
Yu Huang, Xiangfeng Duan, Yi Cui, Lincoln J. Lauhon, Kyoung-Ha Kim, Charles M. Lieber
Journal: Science , vol. 294, no. 5545, pp. 1313-1317, 2001
Carbon Nanotube-Based Nonvolatile Random Access Memory for Molecular Computing (Citations: 366)
Thomas Rueckes, Kyoungha Kim, Ernesto Joselevich, Greg Y. Tseng, Chin-Li Cheung, Charles M. Lieber
Journal: Science , vol. 289, no. 5476, pp. 94-97, 2000
Growth of nanowire superlattice structures for nanoscale photonics and electronics (Citations: 296)
Mark S. Gudiksen, Lincoln J. Lauhon, Jianfang Wang, David C. Smith, Charles M. Lieber
Journal: Nature , vol. 415, no. 6872, pp. 617-620, 2002
Multiplexed electrical detection of cancer markers with nanowire sensor arrays (Citations: 277)
Journal: Nature Biotechnology - NAT BIOTECHNOL , vol. 23, no. 10, pp. 1294-1301, 2005
Single-nanowire electrically driven lasers (Citations: 237)
Xiangfeng Duan, Yu Huang, Ritesh Agarwal, Charles M. Lieber
Journal: Nature , vol. 421, no. 6920, pp. 241-245, 2003
Epitaxial core–shell and core–multishell nanowire heterostructures (Citations: 228)
Lincoln J. Lauhon, Mark S. Gudiksen, Deli Wang, Charles M. Lieber
Journal: Nature , vol. 420, no. 6911, pp. 57-61, 2002
Observation of metastable Aβ amyloid protofibrils by atomic force microscopy (Citations: 189)
James D. Harper, Stanislaus S. Wong, Charles M. Lieber, Peter T. Lansbury
Journal: Chemistry & Biology - CHEM BIOL , vol. 4, no. 2, pp. 119-125, 1997
Coaxial silicon nanowires as solar cells and nanoelectronic power sources (Citations: 179)
Bozhi Tian, Xiaolin Zheng, Thomas J. Kempa, Ying Fang, Nanfang Yu, Guihua Yu, Jinlin Huang, Charles M. Lieber
Journal: Nature , vol. 449, no. 7164, pp. 885-889, 2007
General Synthesis of Compound Semiconductor Nanowires (Citations: 177)
X. Duan, C. M. Lieber
Journal: Advanced Materials - ADVAN MATER , vol. 12, no. 4, pp. 298-302, 2000
Diameter-controlled synthesis of single crystal silicon nanowires (Citations: 164)
Y. Cui, L. J. Lauhon, M. S. Gudiksen, J. Wang, C. M. Lieber
Published in 2001.
Direct Ultrasensitive Electrical Detection of DNA and DNA Sequence Variations Using Nanowire Nanosensors (Citations: 159)
Jong-in Hahm, Charles M. Lieber
Journal: Nano Letters - NANO LETT , 2004
Ge/Si nanowire heterostructures as high-performance field-effect transistors (Citations: 157)
Jie Xiang, Wei Lu, Yongjie Hu, Yue Wu, Hao Yan, Charles M. Lieber
Journal: Nature , vol. 441, no. 7092, pp. 489-493, 2006
Highly Polarized Photoluminescence and Photodetection from Single Indium Phosphide Nanowires (Citations: 157)
.Journal: Science , vol. 293, no. 5534, pp. 1455-1457, 2001
Indium phosphide nanowires as building blocks for nanoscale electronic and optoelectronic devices (Citations: 156)
Xiangfeng Duan, Yu Huang, Yi Cui, Jianfang Wang, Charles M. Lieber
Journal: Nature
Electrical detection of single viruses (Citations: 156)
Fernando Patolsky, Gengfeng Zheng, Oliver Hayden, Melike Lakadamyali, Xiaowei Zhuang, Charles M. Lieber
catalysts, silane as reactant, and diborane as p-type dopant with aB Si ratio of 1:4,000. Arrays of silicon nanowire devices were defined by using photolithography with Ni metal contacts (14) on silicon substrates with a 600-nm-thick oxide layer. The metal contacts to the nanowires were isolated by subsequent deposi- tion of 50-nm-thick Si3N4 ...
Journal: Proceedings of The National Academy of Sciences - PNAS , vol. 101, no. 39, pp. 14017-14022, 2004
Atomic structure and electronic properties of single walled carbon nanotubes (Citations: 149)
T. W. Odom, J. L. Huang, P. Kim, C. M. Lieber
Journal: Nature , 1998
Probing Electrical Transport in Nanomaterials: Conductivity of Individual Carbon Nanotubes (Citations: 147)
H. Dai, E. W. Wong, C. M. Lieber
Journal: Science , vol. 272, no. 5261, pp. 523-526, 1996
Functional Group Imaging by Chemical Force Microscopy (Citations: 142)
C. Daniel Frisbie, Lawrence F. Rozsnyai, Aleksandr. Noy, Mark S. Wrighton, Charles M. Lieber
Journal: Science , vol. 265, no. 5181, pp. 2071-2074, 1994
Synthesis and characterization of carbide nanorods (Citations: 129)
Hongjie Dai, Eric W. Wong, Yuan Z. Lu, Shoushan Fan, Charles M. Lieber
Journal: Nature , vol. 375, no. 6534, pp. 769-772, 1995
Nanowire Crossbar Arrays as Address Decoders for Integrated Nanosystems (Citations: 123)
Z. Zhong, D. Wang, Y. Cui, M. W. Bockrath, C. M. Lieber
Journal: Science , vol. 302, no. 5649, pp. 1377-1379, 2003
Single-crystal metallic nanowires and metal/semiconductor nanowire heterostructures (Citations: 117)
Yue Wu, Jie Xiang, Chen Yang, Charles M. Lieber
Journal: Nature , vol. 430, no. 6995, pp. 61-65, 2004
Directed assembly of one-dimensional nanostructures into functional networks (Citations: 108)
Y. Huang, X. Duan, Q. Wei, C. M. Lieber
Journal: Science , 2003
Atomic force microscopic imaging of seeded fibril formation and fibril branching by the Alzheimer's disease amyloid-β protein (Citations: 102)
James D. Harper, Charles M. Lieber, Peter T. Lansbury Jr
Background: Amyloid plaques composed of the fibrillar form of the amyloid-β protein (Aβ) are the defining neuropathological feature of Alzheimer's disease (AD). A detailed understanding of the time course of amyloid formation could define steps in disease progression and provide targets for therapeutic intervention. Amyloid fibrils, indistinguishable from those derived from an AD brain, can be produced in ...
Journal: Chemistry & Biology - CHEM BIOL , vol. 4, no. 12, pp. 951-959, 1997
Nanowire electronic and optoelectronic devices (Citations: 100)
Yat Li, Fang Qian, Jie Xiang, Charles M. Lieber
Journal: Materials Today - MATER TODAY , vol. 9, no. 10, pp. 18-27, 2006
Covalently functionalized nanotubes as nanometresizedprobes in chemistry and biology (Citations: 93)
S. S. Wong, E. Joselevich, A. T. Woolley, C. L Cheung, C. M. Lieber
Journal: Nature , 1998
Directed assembley of one-dimensional nanostructures into functional networks (Citations: 83)
Y. Huang, X. Duan, Q. Wei, C. M. Lieber
Journal: Science , 2001
Nanowire nanosensors (Citations: 71)
Fernando Patolsky, Charles M. Lieber
Journal: Materials Today - MATER TODAY , vol. 8, no. 4, pp. 20-28, 2005
Experimental Realization of the Covalent Solid Carbon Nitride (Citations: 68)
C. Niu, Y. Z. Lu, C. M. Lieber
Journal: Science , vol. 261, no. 5119, pp. 334-337, 1993
Fabrication of silicon nanowire devices for ultrasensitive, label-free, real-time detection of biological and chemical species (Citations: 68) |
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