AFM-IR: Combining Atomic Force Microscopy and Infrared Spectroscopy for Nanoscale Chemical Characterization

被引:399
作者
Dazzi, Alexandre [1 ]
Prater, Craig B. [2 ]
Hu, Qichi [2 ]
Chase, D. Bruce [3 ]
Rabolt, John F. [3 ]
Marcott, Curtis [4 ]
机构
[1] Univ Paris 11, Chim Phys Lab, F-91405 Orsay, France
[2] Anasys Instruments, Santa Barbara, CA 93101 USA
[3] Univ Delaware, Dept Mat Sci & Engn, Newark, DE 19716 USA
[4] Light Light Solut LLC, Athens, GA 30608 USA
基金
美国国家科学基金会;
关键词
Infrared microspectroscopy; Atomic force microscopy; AFM; IR; Near field; E; coli; Polymer; Poly(hydroxybutyrate); PHB; Organic photovoltaics; P3HT; PCMB; Poly(hydroxyalkanoate); PHA; Phase separation; Miscibility; Pharmaceutical formulation; Nanofibers; Molecular orientation; Poly(vinylidene fluoride); PVDF; NEAR-FIELD; CRYSTALLIZATION TENDENCY; LIVING CELLS; ABSORPTION; RESOLUTION; POLY(3-HYDROXYBUTYRATE); SPECTROMICROSCOPY; MICROSPECTROMETRY; CLASSIFICATION; VIRUSES;
D O I
10.1366/12-06804
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Polymer and life science applications of a technique that combines atomic force microscopy (AFM) and infrared (IR) spectroscopy to obtain nanoscale IR spectra and images are reviewed. The AFM-IR spectra generated from this technique contain the same information with respect to molecular structure as conventional IR spectroscopy measurements, allowing significant leverage of existing expertise in IR spectroscopy. The AFM-IR technique can be used to acquire IR absorption spectra and absorption images with spatial resolution on the 50 to 100 nm scale, versus the scale of many micrometers or more for conventional IR spectroscopy. In the life sciences, experiments have demonstrated the capacity to perform chemical spectroscopy at the sub-cellular level. Specifically, the AFM-IR technique provides a label-free method for mapping IR-absorbing species in biological materials. On the polymer side, AFM-IR was used to map the IR absorption properties of polymer blends, multilayer films, thin films for active devices such as organic photovoltaics, microdomains in a semicrystalline polyhydroxyalkanoate copolymer, as well as model pharmaceutical blend systems. The ability to obtain spatially resolved IR spectra as well as high-resolution chemical images collected at specific IR wavenumbers was demonstrated. Complementary measurements mapping variations in sample stiffness were also obtained by tracking changes in the cantilever contact resonance frequency. Finally, it was shown that by taking advantage of the ability to arbitrarily control the polarization direction of the IR excitation laser, it is possible to obtain important information regarding molecular orientation in electrospun nanofibers.
引用
收藏
页码:1365 / 1384
页数:20
相关论文
共 57 条
[1]   Mid-infrared near-field spectroscopy [J].
Amarie, Sergiu ;
Ganz, Thomas ;
Keilmann, Fritz .
OPTICS EXPRESS, 2009, 17 (24) :21794-21801
[2]   A Classification System to Assess the Crystallization Tendency of Organic Molecules from Undercooled Melts [J].
Baird, Jared A. ;
Van Eerdenbrugh, Bernard ;
Taylor, Lynne S. .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2010, 99 (09) :3787-3806
[3]  
Bhargava R, 2005, SHEFF ANALY CHEM, P1, DOI 10.1002/9780470988541
[4]   Infrared spectroscopic mapping of single nanoparticles and viruses at nanoscale resolution [J].
Brehm, Markus ;
Taubner, Thomas ;
Hillenbrand, Rainer ;
Keilmann, Fritz .
NANO LETTERS, 2006, 6 (07) :1307-1310
[5]   Free-electron-laser near-field nanospectroscopy [J].
Cricenti, A ;
Generosi, R ;
Perfetti, P ;
Gilligan, JM ;
Tolk, NH ;
Coluzza, C ;
Margaritondo, G .
APPLIED PHYSICS LETTERS, 1998, 73 (02) :151-153
[6]   Chemical mapping of the distribution of viruses into infected bacteria with a photothermal method [J].
Dazzi, A. ;
Prazeres, R. ;
Glotin, F. ;
Ortega, J. M. ;
Al-Sawaftah, M. ;
de Frutos, M. .
ULTRAMICROSCOPY, 2008, 108 (07) :635-641
[7]   Analysis of nano-chemical mapping performed by an AFM-based ("AFMIR") acousto-optic technique [J].
Dazzi, A. ;
Prazeres, R. ;
Glotin, F. ;
Ortega, J. M. .
ULTRAMICROSCOPY, 2007, 107 (12) :1194-1200
[8]   Subwavelength infrared spectromicroscopy using an AFM as a local absorption sensor [J].
Dazzi, A. ;
Prazeres, R. ;
Glotin, F. ;
Ortega, J. M. .
INFRARED PHYSICS & TECHNOLOGY, 2006, 49 (1-2) :113-121
[9]   Local infrared microspectroscopy with subwavelength spatial resolution with an atomic force microscope tip used as a photothermal sensor [J].
Dazzi, A ;
Prazeres, R ;
Glotin, E ;
Ortega, JM .
OPTICS LETTERS, 2005, 30 (18) :2388-2390
[10]   Theoretical study of an absorbing sample in infrared near-field spectromicroscopy [J].
Dazzi, A ;
Goumri-Said, S ;
Salomon, L .
OPTICS COMMUNICATIONS, 2004, 235 (4-6) :351-360