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个人资料:

       曹国鑫,男,1973年出生, cell phone15001226465 office phone 62756284email: caogxpku.edu.cn,通信地址:北京大学工学院力学与工程科学系,力学楼317室,邮编:100871

教育背景:

·             2004年毕业于美国Clemson University材料科学与工程系 获得博士学位,博士论文:纳米材料的加工,性能及应用的多尺度计算模拟

·             2000年毕业于北京航空航天大学 材料系获得博士学位,博士论文:全片层gamma-TiAl合金的微观组织与宏观力学性能的关系

·             1996年毕业于内蒙古工业大学固体力学专业 获得硕士学位,硕士论文:稀土元素对于铝合金机械性能的改善研究

·             1993年毕业于大连理工大学化工机械系 获得学士学位

工作经历:

·             20109月至现在:特聘研究员 北京大学工学院,力学与工程科学系

·             20088月至20108月:助理研究教授 在美国Nebraska-Lincoln大学,工程力学系

·             20051月至20085月:博士后在美国Columbia大学纳米力学中心,土木工程力学系

·             20009月至200411月:研究助理在美国Clemson大学机械工程系

教授课程:

·             计算固体力学概论(研究生必修)64学时,(2011年课程评估88.4分,2015年提高到99分)

·             微纳米尺度测试原理与方法(本科生专业限选)32学时,(新开课程,评估92分)

·             力学专业英语(本科生专业限选)51学时,(英文授课,2015年课程评估88分)

·             Advanced Mechanics of Materials 2009-2010 University of Nebraska-Lincoln

科研基本情况简介:

Ø 主要研究方向为微纳米结构力学性能以及相关应用的多尺度计算模拟,该方向是固体力学、材料科学和物理学等学科的前沿交叉领域。在该领域从事研究不仅要求研究者具有力学研究的基本素质,还要有扎实的材料科学和物理科学的知识。主要包括:

·        通过多尺度模拟方法研究低维材料结构(纳米碳管和二维材料)的力学行为;

·        基于纳米流控行为的机械能能量吸收/耗散系统;

Ø 科研论文发表及引用:到目前总共撰写期刊论文73篇,已经发表SCI期刊学术论文70篇【其中以第一作者,通讯作者以及第二作者(合作导师第一作者)发表共61篇】,总引用次数为2220H-Index28,论文总影响因子为222.8在北大工作期间(2010.09--)以北大为第一单位,发表SCI期刊论文20篇,其中独立通讯作者19篇,论文总影响因子为83.2,论文总引用次数为170次(8篇被引用超过10次)。

·   根据Google Schoolar数据:所发表论文H引用因子为28 (h index = 28)。论文的总被引用次数超过2200次,Google Scholar webpage: http://scholar.google.com/citations?user=7GcZdgwAAAAJ&hl=en

·   根据web of Science数据:所发表论文H引用因子为25(h index = 25)。论文的总被引用次数超过1600次,他引近1500次;

·   Researchidhttp://www.researcherid.com/rid/A-9790-2012

·   根据Researchgate: 论文的总被引用次数超过1772https://www.researchgate.net/profile/Guoxin_Cao?ev=hdr_xprf&_sg=XCj7p-WpJQa1jbJ58T6WuRH85G6SjY2LebHXZ2lkelDHyCcBTZWHAvScMLV508Or

Ø 撰写论文全部列表(附在简历最后)

Ø 申请发明专利一项(液固接触角测量新方法)。

Ø 科研经费:入职以来,主持和参与国家自然基金和重大专项课题5项,负责经费近400万(已经入账250万)。

Ø 目前正在申请国家杰出青年基金项目。

主要学术成就和工作亮点:

Ø 通过设计新的数值实验方法解决了纳米流控学长期存在一个基本争论液体的表面张力以及液固接触角是否具有尺度效应;进一步发展了测量液固接触角的新方法,显著降低了传统方法中的测量误差和人为因素的影响,本研究工作刚发表在Scientific Reports,所提出的测试新方法已经申请了科学发明专利。(评阅专家指出我们的工作首次研究了微纳米条件下温度、电解质离子和孔形状对液体表面张力的影响

Ø 通过多尺度模拟研究低维材料复杂力学行为方面取得了一系列重要成果,从连续介质薄膜拓展到二维材料,首次发现范德华作用会影响二维材料压痕测试(指出发表在Science 2008的传统模型的问题并加以修正),从而更准确获得二维材料力学性能,主要结果发表在Carbonnanotechnology等纳米力学主流期刊。(我们关于范德华作用对二维材料压痕分析影响的工作被IOP Science Lap talk进一步报道,俄罗斯科学院的学者在Mechanics of Solids发表的论文也引用了我们的发现。我们关于薄膜失稳图案的工作在2015年也被NatureNature Materials 的文章分别引用)

Ø 首次建立了研究压力驱动下纳米流控行为的数值实验方法,并通过该方法系统研究了基于纳米流控行为的新一代吸能材料的吸能行为,为开发新一代能量吸收耗散系统提供了重要的科学指导,主要结果发表在J.Phys.Chem.CJ.Chem.Phys.等纳米流控模拟的主流期刊,该数值实验方法目前已经成为研究相关问题的通用方法,我们的方法及相关结果被国内外学者大量引用。

承担主要研究课题详述:

Ø   项目负责人(PI)或合作负责人(Co-PI

1.      2012/1-2015/12,国家自然基金面上项目11172002),基于纳米多孔材料的新型能量吸收系统项目负责人项目总经费:72

2.      2013/1-2017/12,纳米研究重大科学研究计划项目,单分子单细胞水平高分辨实时动态纳米检测技术及应用;课题名称:高分辨、高通量、三维细胞微纳米力学表征技术及其应用2013CB933702),项目组成员,本人所承担项目经费:150 (项目总经费600万);

3.      2015/1-2019/12,国家磁约束核聚变能发展研究专项,基于载能粒子辐照的聚变堆材料快速筛选的等效性研究2015GB113000), 项目组成员,本人所承担项目经费:150 (项目总经费500万);

4.      2012/7-2013/6863项目2012AA8041069),间接驱动xx压缩与直接驱动冲击xx的物理研究项目组副组长,本人所承担项目经费:10 (项目总经费20万);

5.      2013/7-2014/6,重大专项项目GFZX02010401.7),混合驱动x物理基础研究项目组副组长,本人所承担项目经费:15(项目总经费30万);

6.      2010/1The Research Project of Nebraska-Lincoln University, “The micromechanical model of neuronal function loss and recovery-microscale mechanism of TBI” 项目负责人,项目总经费: US$10,000;

·             项目参与及完成人

1.      2008-2010, 计算模拟研究对于爆炸冲击波引起的大脑损伤(美国陆军实验室经费,funded by U.S. Army Research Lab, PI: Dr. Chandra, 项目组成员, (项目总经费US$ 4 million

2.      2005-2007, 纳米生物力学及纳米流体力学的基础研究(美国哥伦比亚大学纳米力学中心经费,funded by Nanomechanics Center in Columbia University, PI: Dr. Xi Chen, Dr. Jeffrey W. Kysar

3.      2000-2004, 计算模拟研究对于纳米材料的加工,性能及应用(美国陆军实验室经费,funded by U.S. Army Research Lab, PI: Dr. Mica Grujicic;

指导研究生:

·             博士研究生4人:牛天晓(2012),熊思(2013),刘海龙(2014),任云鹏(2014);

·             硕士研究生3人:刘海龙(2011),王启尧(2012),刘雁伟(2016);其中刘海龙获得2013年国家奖学金

·             已毕业学生:博士生刘海龙(201666日答辩),硕士生王启尧(20156月答辩)

·             另外:(2008-2010年期间,Co-advising with Dr. Namas Chandra in University of Nebrask-Lincoln):

PHD students (2): Shailesh Ganpule (2007~2012) and Aravind Sundaramurthy (2008~2013);

Master student (1): Niklas Lingesten (2008~2010)

获得的主要成就及奖励(AWARDS:

·             北京大学第11届青年教师教学基本功比赛二等奖;

·             2012年度北京大学优秀班主任三等奖;

·             The 2010 Layman Award of University of Nebraska-Lincoln

·             获得Columbia大学2008BWF (Burroughs Wellcome Fund) Career Awards at the Scientific Interface 提名(总共两人获提名)。

未来工作计划:

·   在教学方面将更大程度的参与本科生必修课的讲授;另外,虽然目前对本科生专业英语的要求日益增加,但是国内一直缺乏力学专业英语的专门教材,针对这个问题,我准备根据自己多年在这方面的教学经验撰写一本力学专业英语教材。

·   在科研工作上进一步发展对理论计算模拟的实验验证工作,争取两条腿走路。发展和国内外一些著名纳米力学实验研究组的合作,以及建设我们自己的纳米力学和软物质力学相结合的实验测试平台,进一步延续我们在纳米力学计算模型领域内已取得的学术成就,例如:我们关于薄膜失稳的研究最近被发表在NatureNature Materials, Advanced Materials等著名期刊论文引用。

·   继续申请国家杰出青年人才基金项目。

专业活动:

2014年北京大学工学院第一届博士生论坛组委会主任委员;

2013年北京振动工程学会理事;

2012年力学全国博士生学术论坛组织委员会委员;

20123PKU-YNU Joint Workshop成员;

2011 年全国塑性力学会议组织委员会委员;

2013年秋季主持力学系与湍流国家重点实验室学术邀请报告;

2010年秋季主持力学系与湍流国家重点实验室学术邀请报告;

美国机械工程协会成员(ASME member 2005-2010);

美国材料协会成员 (MRS member 2009-2010)

·      专业期刊审稿人: (Journal reviewer)

NanoLetters; ACS Nano; Nanoletters; Advanced Materials; Physical Review Letters; Scientific Reports; Journal of American Society of Chemistry; Computational Material Science; Physical Review B; International Journal of Solid Structures; Applied surface science; Mechanics Research Communications; Journal of Nanoengineering and Nanosystems; Journal of Biomechanics, Nanotechnology; Journal of physical chemistry; Journal of chemical physics; Theoretical & Applied Mechanics; Tissue Engineering; Journal of Nanomechanics and Micromechanics; Journal of Composite Materials; Chemical Engineering Science; Part B: Journal of Engineering Manufacture

·      担任博士生答辩委员、评阅博士论文超过20人次

·      学术会议报告:Conference Presentations

1.      2016625-29日,ECCM17(第17届欧洲复合材料会议),会议报告“Mechanical response of graphene/PDMS nanocomposite under nanoindentation”

2.      2014810-12日,2014全国计算力学会议,会议报告二维材料无基底压痕响应的多尺度研究

3.      20141017-19日,第十三届全国物理力学会议,会议报告纳米多孔吸能材料系统

4.      20141012-14日,2014全国固体力学大会,会议报告石墨烯力学行为的多尺度研究

5.      2014816-18日,第十四届现代数学和力学学术会,会议报告二维材料无基底压痕响应的多尺度研究

6.      20131211APCOM2013,亚太计算力学会议,会议报告“Multiscale investigations of the mechanical properties of graphene based on free-standing indentation“

7.      2013819~821 中国力学大会,会议报告二维材料力学行为的多尺度研究

8.      20101016日参加北京振动工程学会学术报告会,会议报告新型吸能材料

9.      201118日参加北京力学会第17次年会,会议报告纳米多孔能量吸收耗散系统

10.   2011822日参加中国力学大会-2011暨钱学森诞辰100周年纪念大会,会议报告纳米尺度环境下的流体行为以及纳米多孔能量吸收耗散系统

11.   20091113ASME 2009 International Mechanical Engineering Congress & Exposition IMECE 2009Lake Buena Vista, Florida, USA会议报告“EVALUATING NUCLEUS EFFECT ON THE CELL MECHANICAL BEHAVIOR”

12.   20091213Third International Conference on Mechanics of Biomaterials & Tissues, Clearwater Beach, Florida, USA, 会议报告:“Evaluating the Mechanical Behaviour of Biological Cell Based on Scanning Probe Indentation”

13.   Nanoenvironments, Mechanics and Materials 2007, Austin, TX;会议报告“Nanoporous Energy Absorption System and Gas-Liquid Interaction”

14.   ASME Congress, Chicago, IL 2006 Topic 1: Confined liquid behavior in nanochannels; Topic 2: Mechanical properties of carbon nanotubes in axial and radial directions; Topic 3: Strain sensing with single-walled carbon nanotubes; Topic 4: Buckling of single-walled carbon nanotubes 

15.   USNCTAM'06, Boulder, CO 2006; On the Thermal-Mechanical Properties of Single-Wall Carbon Nanotubes 

16.   ASME Congress, Orlando, FL 2005Topic 1: The Thermal-Mechanical Properties of Single-Walled Carbon Nanotubes; Topic 2: Mechanisms of Nanoindentation on Single-Walled Carbon Nanotubes

·             邀请报告(Invited Presentations):

1.      201675日,奥地利维也纳大学Polymer and Composite Engineering Group (PaCE)邀请报告:“Mechanical response of graphene/PDMS nanocomposite under nanoindentation”

2.      2016415日,清华大学工程力学系邀请报告:“Wetting properties of liquids at nano- environments”;

3.      2016415日,北京大学力学与工程科学系邀请报告:低维材料力学行为的多尺度模拟”;

4.      201597日,北京应用物理及计算数学研究所邀请报告:“working mechanism of nanoporous energy absorption system under high speed loading”;

5.      2015919 北京大学 国际计算力学研讨会, 邀请报告“Free-standing indentation response of 2D materials”

6.      2015715 ICCM2015Auckland Newzeland)国际计算力学会议,分会场Keynote报告“FEM of the indentation response of graphene with soft substrate”

7.      201436日,清华大学 工程力学系邀请报告:“Working mechanism of nanoporous energy absorption system under high speed loading”

8.      20141018日,湘潭大学 材料科学工程系邀请报告:“Nanofluidic Energy Absorption System”

9.      2013412 清华大学 工程力学系邀请报告:二维材料力学行为的多尺度研究

10.   2012513-15日第六届国际分子模拟与信息技术应用学术会议材料科学分会邀请报告:The Application of Solid-liquid Interaction in Nanofluidic System

11.   2012825 参加西安交通大学中美力学研讨会;

12.   2011 7 美国内布拉斯加-林肯大学 工程力学系邀请报告:Nanoporous Energy Absorption System

13.   2011318-20PKU-YNU Faculty Research Workshop 邀请报告“The Application of Nanofluidic System in Mechanical Energy Damping”

14.   201031Department of Mechanical Engineering, North Dakota state universityTopicNanoporous Energy Absorption/Damping System

15.   200899  Seminar in Department of Engineering Mechanics, the University of  Nebraska-Lincoln, NE 68588, Sept 9, 2008, Topic: Computational Simulation of the Elastic Property of ZnO Nanofilms

16.   2007215 Seminar in Department of Civil Engineering and Engineering Mechanics, Columbia University, NY 10027 , Topic: Some Recent Studies on the Mechanics of Carbon Nanotubes

社会服务:

·             工学院工会副主席(2015-现在);      

·             工学院2011级本科生班主任,本科生导师,

·             2011年春季协助筹备系英文网站,

·             工程力学实验室管理员


Publication lists: *通讯作者)

1.         Tianxiao Niu and Guoxin Cao*. Indentation behavior of two-dimensional materials mounted on different substrates, submitted to international journal of solid structures (2016)

2.         Tianxiao Niu and Guoxin Cao*. Fracture behavior of graphene mounted on stretchable substrate, submitted to Carbon (2016)

3.         Tianxiao Niu and Guoxin Cao*. Indentation response of the strongest membrane mounted on the soft substrate, submitted to international journal of solid structures (2016)

4.         Yunpeng Ren and Guoxin Cao*, Effect of geometrical defects on the tensile properties of graphene, Carbon, 2016, 103, pp125-133. (SCI, IF = 6.2)

5.         Hailong Liu and Guoxin Cao*, Effectiveness of the Yang-Laplace equation at nanoscale, Scientific Reports 2016, 6, 23936. (SCI, IF = 5.8)

6.         Hailong Liu and Guoxin Cao*, Reusable Energy Absorption Performance Based on Nanofluidic Systems, Journal of physical Chemistry C, 2016, 120 (9), pp 5213–5220 (SCI, IF = 4.8)

7.         L. Zhou and Guoxin Cao*. Nonlinear anisotropic deformation behavior of graphene monolayer under uniaxial tension, Physical Chemistry Chemical Physics 18, 1657 (2016)  (SCI, IF = 4.5)

8.         Xiong Si. and Guoxin Cao*, Molecular simulations of bending behavior of single layer MoS2, Nanotechnology 27, 105701 (2016) (SCI, IF = 3.8)

9.         Xiong Si. and Guoxin Cao*, Molecular dynamics simulations of mechanical properties of monolayer MoS2. Nanotechnology, 26(18), 185705 (2015). (SCI, IF = 3.8)

10.     Guoxin Cao*. Atomistic Studies of Mechanical Properties of Graphene, Polymers, 6(9), 2404-2432 (2014). (SCI, IF = 3.7)

11.     Tianxiao Niu and Guoxin Cao*. Finite size effect does not depend on the loading history in soft matter indentation, Journal of Physics D-Applied Physics, 47 (38), 385303 (2014). (SCI, IF = 2.7)

12.     Tianxiao Niu and Guoxin Cao*. Power-law rheology analysis of biological cell properties under AFM indentation measurement, Rsc Advances, 4(55), 29291-29299 (2014). (SCI, IF = 3.8)

13.     Hailong Liu and Guoxin Cao*. Super-high Energy Absorption System Based on Nanofluidic Glycerol Solution, Journal of physical Chemistry C, 118(43), 25223-25233 (2014). (SCI, IF = 4.8)

14.     L. Zhou, Y. Wang and Guoxin Cao*. Estimating the elastic properties of few-layer graphene from free-standing indentation response, Journal of Physics: Condensed Matter, 25, 475301 (2013). (SCI, IF = 2.4)

15.     L. Zhou, Y. Wang and Guoxin Cao*. Boundary condition and pre-strain effects on the free standing indentation response of graphene monolayer, Journal of Physics: Condensed Matter, 25, 475303 (2013). (SCI, IF = 2.4)

16.     Hailong Liu and Guoxin Cao*. Effects of impact velocity on pressure-driven nanofluid, Journal of Chemical Physics, 139,114701 (2013). (SCI, IF = 3.2)

17.     L. Zhou, J. Xue, Y. Wang and Guoxin Cao*. Molecular mechanics simulations of the deformation mechanism of graphene monolayer under free standing indentation, Carbon, 63, 117-124 (2013). (SCIIF = 5.9)

18.     L. Zhou, Y. Wang and Guoxin Cao*. Van der waals effect on the nanoindentation response of free standing monolayer graphene, Carbon, 57,357-362 (2013). (SCIIF = 5.9)

19.     L. Zhou, Y. Wang and Guoxin Cao*. Elastic properties of monolayer graphene with different chiralities, Journal of Physics: Condensed Matter, 25, 125302 (2013). (SCIIF =2.4)

20.     Hailong Liu and Guoxin Cao*. Interaction between Mechanical Wave and Nanoporous Energy Absorption System, Journal of physical Chemistry C, 117, 4245-4252 (2013). (SCI, IF = 4.8)

21.     Guoxin Cao*, Jie Sui and Suli Sun. Evaluating the Nucleus Effect on the Dynamic Indentation Behavior of Cells. Biomechanics and Modeling in Mechanobiology, 12, 55-66 (2013). (SCI, IF = 3.3)

22.     Zigang Ge , Chao Li, Boon Chin Heng, Guoxin Cao, Zheng Yang. Functional biomaterials for cartilage regeneration. Journal of Biomedical Materials Research Part A. 100A, 2526–2536 (2012).

23.     Guoxin Cao*. Working Mechanism of Nanoporous Energy Absorption System under High Speed Loading, Journal of physical Chemistry C, 116 (14), 8278–8286 (2012). (SCI, IF = 4.8).

24.     Guoxin Cao*, and Namas Chandra. Evaluation of Biological Cell Properties Using Dynamic Indentation Method. Physical Review E 81, 021924 (2010).

25.     Guoxin Cao, Xi Chen, Zhi-Hui Xu and Xiaodong Li.  Measuring Mechanical Properties Of Micro- And Nano-Fibers Embedded In An Elastic Substrate: Theoretical Framework And Experiment. Composites Part B: Engineering, 41, 33-41 (2010).

26.     Xi Chen, Guoxin Cao, Aijie Han, Patricia J. Culligan, and Yu Qiao. Nanoscale Fluid Transport: Size and Rate Effects, Nano Letters, 8 (9), 2988–2992 (2008).

27.     Guoxin Cao, Yu Qiao, Qulan Zhou, and Xi Chen, Water Infiltration Behaviors in Carbon Nanotubes under Static and Dynamic Loading Conditions. Molecular Simulation 34, 1267-1274 (2008).

28.     Guoxin Cao, Yu Qiao, and Xi Chen. The Infiltration Behavior of Water in Carbon Nanotube under External Pressure, Philosophical Magazine Letters. 88, 371–378 (2008).

29.     Guoxin Cao and Xi Chen. Self-Assembled Triangular and Labyrinth Buckling Patterns of Thin Films on Spherical Substrates. Physical Review Letters, 100, 036102 (2008).

30.     Guoxin Cao and Xi Chen. The Size Dependence and Orientation Dependence of Elastic Property of ZnO Films. International Journal of solids and Structure, 45, 1730–1753, (2008).

31.     Liu Ling, Guoxin Cao, and Xi Chen. Mechanisms Of Nanoindentation On Multi-Walled Carbon Nanotube And Nanotube Cluster, Journal of Nanomaterials. 271763, (2008).

32.     Guoxin Cao and Xi Chen. The Size Effect Of Nanoindentation On Zno Nanofilms. Journal of Applied Physics, 102, 123513 (2007).

33.     Xi Chen and Guoxin Cao. Atomistic Studies of Mechanical Properties of Carbon Nanotube. Journal of theoretical and computational nanoscience, 4, 823-839, (2007).

34.     Guoxin Cao and Xi Chen. An Energy Analysis of Size-Dependent Elastic Properties of ZnO Nanofilms. Physical Review B, 76, 165407 (2007).

35.     Yu Qiao, Guoxin Cao, and Xi Chen, Effects of gas molecules on nanofluidic behaviors, Journal of the American Chemical Society. 129, 2355-2359 (2007).

36.     Guoxin Cao, Jeffrey W. Kysar and Xi Chen, The mean path of dislocations in nanoparticle and nanorod reinforced metal composites and implication for strengthening mechanisms, Mechanics Research Communication, 34, 275–282 (2007).

37.     Guoxin Cao and Xi Chen, The effects of chirality and boundary conditions on the mechanical properties of single-walled carbon nanotubes. International Journal of Solids and Structures 44, 5447-5465 (2007).

38.     Guoxin Cao and Xi Chen, Buckling Behavior of Single-walled Carbon Nanotubes and a Targeted Molecular Mechanics Approach. PHYSICAL REVIEW B 74, 165422 (2006).

39.     Guoxin Cao, Xi Chen and Jeffrey W. Kysar, Radial Breathing Mode of the Deformed Single-Walled Carbon Nanotubes, Journal of Applied Physics 100, 124305 (2006).

40.     Guoxin Cao and Xi Chen. The effect of the displacement increment on the axial compressive buckling behaviors of single-walled carbon nanotubes. Nanotechnology 17, 3844–3855 (2006).

41.     Yuye Tang, Guoxin Cao, Xi Chen, Jejoong Yoo, Arun Yethiraj and Qiang Cui. A finite element framework for studying mechanical response of macromolecules: Application to the gating of the mechanosensitive channel, MscL. Biophysical Journal, 91, 1248-1263 published as a cover article (2006).

42.     Guoxin Cao, Xi Chen and Jeffrey W. Kysar. Thermal vibration and apparent thermal contraction of single-walled carbon nanotubes. Journal of the Mechanics and Physics of Solids, 54, 1206–1236 (2006).

43.     Guoxin Cao and Xi Chen. Buckling of single-walled carbon nanotubes upon bending: Molecular dynamics simulations and finite element method. Physical Review B, 73, 155435 (2006).

44.     Guoxin Cao and Xi Chen. Mechanisms of nanoindentation on single-walled carbon nanotubes part I: the effect of nanotube length. Journal of Material Research, 21, 1048-1070 (2006).

45.     Xi Chen and Guoxin Cao. A new structural mechanics approach of single-walled carbon nanotubes generalized from atomistic simulation, Nanotechnology, 17, 1004-1015 (2006).

46.     Guoxin Cao, Yuye Tang and Xi Chen. Elastic properties of Carbon Nanotubes in Radial Direction. Proceedings of the I MECH E Part N, Journal of Nanoengineering and Nanosystems, 219, Number 2, 73-88 (2005).

47.     Guoxin Cao, Xi Chen and Jeffrey W. Kysar. Strain sensing with carbon nanotubes: numerical analysis of the vibration frequency of deformed single-walled carbon nanotubes. Physical Review B, 72, 195412 (2005).

48.     Guoxin Cao, Xi Chen and Jeffrey W. Kysar. On the apparent thermal contraction of single-walled carbon nanotubes. Physical Review B, 72, 235404 (2005).

49.     M. Grujicic, Guoxin Cao, W. N. Roy. Computational analysis of the lattice contribution to thermal conductivity of single-walled carbon nanotubes. Journal of Materials Science, 40(8), 1943-1952 (2005).

50.     M. Grujicic, Guoxin Cao and W. N. Roy. Suitability of boron-nitride single-walled nanotubes as fluid-flow conduits in nano-valve applications. Applied Surface Science, 246, 149-158 (2005).

51.     M. Grujicic, K. M. Chittajallu, Guoxin Cao and W. N. Roy. An atomic level analysis of conductivity and strength in poly(ethylene oxide) sulfonic acid based solid polymer electrolytes. Materials Science and Engineering B, 117, 187-197 (2005).

52.     M. Grujicic, Guoxin Cao, B. Pandurangan and W. N. Roy, Finite element analysis-based design of a fluid-flow control nano-valve. Materials Science and Engineering B, 117, 53-61 (2005).

53.     M. Grujicic, Guoxin Cao, and W. N. Roy. A computational analysis of the percolation threshold and the electrical conductivity of carbon nanotubes reinforced polymeric materials. Journal of Materials Science, 39, 4441-4449 (2004).

54.     M. Grujicic, Guoxin Cao, and W. N. Roy. A computational analysis of the carbon- nanotube-based resonant-circuit sensors. Applied Surface Science, 229, 316-323 (2004).

55.     M. Grujicic, Guoxin Cao, and B. Gersten. Atomic-computations of the lattice contribution to thermal conductivity of single-walled carbon nanotubes. Materials Science and Engineering B, 107, 204-216 (2004).

56.     M. Grujicic, Guoxin Cao, and W. N. Roy. Atomistic simulations of solubilization of single-walled carbon nanotubes in toluene. Journal of Materials Science, 39, 2315-2325 (2004).

57.     M. Grujicic, Guoxin Cao, and W. N. Roy. Atomistic modeling of solubilization of carbon nanotubes by non-covalent functionalization with poly(p-phenylenevinylene-co-2,5- ioctoxy-m- phenylene- vinylene). Applied Surface Science, 227, 349-363 (2004).

58.     M. Grujicic, Guoxin Cao, and P. F. Joseph. Multiscale modeling of deformation and fracture of polycrystalline lamellar g-TiAl+a2-Ti3Al alloys. International Journal for Multiscale Computational Engineering, 1, 3-24 (2003).

59.     M. Grujicic, Guoxin Cao, A. M. Rao, T. M. Tritt and S. Nayak. UV-light enhanced oxidation of carbon nanotubes. Applied Surface Science, 214, 289-303 (2003).

60.     M. Grujicic, Guoxin Cao, R. Singh. The effect of topological defects and oxygen adsorption on the electronic transport properties of single-walled carbon-nanotubes. Applied Surface Science, 211, 166-183 (2003).

61.     M. Grujicic, Guoxin Cao. Reactor length-scale modeling of chemical vapor deposition of carbon nanotubes. Journal of Materials Science, 38, 1819-1830 (2003).

62.     M. Grujicic, Guoxin Cao, and B. Gersten. Enhancement of field emission in carbon nanotubes through adsorption of polar molecules. Applied Surface Science, 206, 167-177 (2003).

63.     M. Grujicic, Guoxin Cao, S. Batchu. Crystal plasticity-based finite element analysis of deformation and fracture of polycrystalline lamellar g-TiAl + a2-Ti3Al alloys. Journal of Materials Science. 38, 307-322 (2003).

64.     M. Grujicic, Guoxin Cao, B. Gersten. Optimization of the chemical vapor deposition process for carbon nanotubes fabrication. Applied Surface Science, 199, 90-106 (2002).

65.     M. Grujicic, Guoxin Cao, R. S. Miller. Computer modeling of the evolution of dendrite microstructure in binary alloys during non-isothermal solidification. Journal of Materials Synthesis Processing. 10,191-203 (2002).

66.     M. Grujicic, Guoxin Cao. Crack growth in lamellar titanium aluminides containing beta phase precipitates. Journal of Materials Science, 37, 2949-2963 (2002).

67.     M. Grujicic, Guoxin Cao, B. Gersten. An atomic-scale analysis of catalytically-assisted chemical vapor deposition of carbon nanotubes. Materials Science and Engineering B, 94, 247-259 (2002).

68.     M. Grujicic, Guoxin Cao, G. M. Fadel. Effective materials properties: determination and application in mechanical design and optimization. Journal of Materials: Design & Applications, 215, 225-234 (2002).

69.     M. Grujicic, Guoxin Cao, R. S. Figliola. Computer simulations of the evolution of solidification microstructure in the LENS (TM) rapid fabrication process. Applied Surface Science, 183, 43-57 (2001).

70.     R. S. Miller, Guoxin Cao, M. Grujicic. Monte Carlo simulation of three-dimensional nonisothermal grain-microstructure evolution: Application to LENS rapid fabrication. Journal of Materials Synthesis Processing, 9, 329-345 (2001).

71.     Guoxin Cao*, Lianfen Fu, Jianguo Lin, Yonggang Zhang, Changqi Chen. The relationships of microstructure and properties of a fully lamellar TiAl alloy. Intermetallics, 8, 647-653 (2000).

72.     Guoxin Cao*, Jianguo Lin, Yonggang Zhang, Changqi Chen. Phase transformation of fully lamellar gamma-TiAl alloys in alpha plus gamma field. Transactions of Nonferrous Metals Society of China, 10, 425-429 (2000).

73.     Guoxin Cao*, Jianguo Lin, Yonggang Zhang, Changqi Chen. Influences of grain size and lamellar spacing on the properties of fully lamellar γ-TiAl alloys. Rare Metal Materials and Engineering, 29, 172-176 (2000) (in Chinese).

 

PUBLICATIONS IN CONFERENCE PROCEEDINGS

1.         G. Shailesh, L. Gu, Guoxin Cao and N. Chandra. The Effect of Shock Wave on a Human Head. Proceedings Of The ASME International Mechanical Engineering Congress And Exposition, 2, 339-346    (2010).

2.         Guoxin Cao, Zhou, You; Lee, Jeong Soon; et al.. COMPUTATIONAL SIMULATION OF THE DEFORMATION OF NEURONAL CELLS, Proceedings of the Asme International Mechanical Engineering Congress and Exposition 2010, Vol 2 Pages: 179-180.

3.         Guoxin Cao, Zhou, You; Lee, Jeong Soon; et al.. MECHANICAL MODEL OF NEURONAL FUNCTION LOSS, Proceedings of the Asme International Mechanical Engineering Congress and Exposition 2010, Vol 2 Pages: 185-186.

4.         Guoxin Cao and Namas Chandra. Evaluating nucleus effect on the cell mechanical behavior. Proceedings Of The ASME International Mechanical Engineering Congress And Exposition, 2, 503-504 (2010).

5.         Guoxin Cao and Namas Chandra. Substrate Effect on Dynamic Indentation Measurement of Biological Cell Properties. Structure-Property Relationships In Biomineralized And Biomimetic Composites, Book Series: Materials Research Society Symposium Proceedings,1187,121-126 (2009).