[1] EYRING H. The activated complex in chemical reactions. Journal of Chemical Physics, 1934, 3(2):107-115.
[2] ZEWAIL A H. Femtochemistry: Atomic-scale dynamics of the chemical bond. The Journal of Physical Chemistry, 2000, A104(24): 5660-5694.
[3] KHUNDKAR L R, ZEWAIL A H. Picosecond mpi mass spectrometry of CH3I in the process of dissociation. Chemical Physics Letters, 1987, 142(6): 426-432.
[4] CORRALES M E, LORIOT V, ZEWAIL A H. Structural dynamics effects on the ultrafast chemical bond cleavage of a photodissociation reaction. Physical Chemistry Chemical Physics, 2013, 16(19):8812-8818.
[5] YU H. Study on measurement of femtosecond laser pulse width. Laser Technology, 2013, 37(5):679-681(in Chinese).
[6] YANG M H, JIN Q, LIU J S, et al. CO molecular orientation controlled by combination of chirped THz pulse and femtosecond laser pulse. Laser Technology, 2015, 39(6):735-740(in Chinese).
[7] VALDMANIS J A, FORK R L, GORDON J P.Generation of optical pulse as short as 27 femtoseconds directly from alaser balancing self -phase modulati on group -velocity dispersion saturable absorption, and saturablegain.Optics Letters, 1985, 10(3):131-133.
[8] HE Y X, MU B L, LI J, et al.Relationship between Gaussian beam quality and wavefront aberration. Laser Technology, 2014, 38(6):747-752(in Chinese).
[9] LUDOWISE P, BLACKWELL M, CHEN Y. Femtosecond time-resolved mass and photoelectron spectroscopic study of OC10 photodissociation. Coherent energy transfer in a stepwise reaction. Chemical Physics Letters, 1997, 273(3/4):211-218.
[10] HO J W, CHEN W K, CHENG P Y. A direct observation of a concerted two-bond breaking reaction. Journal of the American Chemical Society, 2007, 129(25): 3748-3785.
[11] HO J W, CHEN W K, CHENG P Y. Unraveling complex three-body photodissociation dynamics of dimethyl sulfoxide: a femtosecond time-resolved spectroscopic study. Journal of Physical Chemistry, 2008, A112(40): 10453-10468.
[12] CHEN W K, HO J W, CHENG P Y. Ultrafast photodissociation dynamics of acetone at 195nm: Ⅱ initial state, intermediate, and product temporal evolutions by femtosecond mass-selected multiphoton ionization spectroscopy. Journal of Physical Chemistry, 2005, A109(34): 6805-6817.
[13] CHEN W K, CHENG P Y. Ultrafast photodissociation dynamics of acetone at 195nm: Ⅱ unraveling complex three-body dissociation dynamics by femtosecond time-resolved photofragment translational spectroscopy. Journal of Physical Chemistry, 2005, A109(34): 6818-6829.
[14] GITZINGER G, CORRALES M E, LORIOT V. A femtosecond velocity map imaging study on B-band predissociation in CH3I. Ⅰ. The band origin. The Journal of Chemical Physics, 2010, 132(23): 234313. doi: 10.1063/1.3455207
[15] ZHANG R R, SHEN H, QIN C C, et al. Ultrafast dissociation dynamics of acrylic acid studied with femtosecond pump-probe technique. Acta Physico-Chimica Sinica, 2012, 28(3):522-527.
[16] XU Y Q, QIU X J, ABULIMITI B, et al. Energy transfer of ethyl iodine studied by time-resolved photoelectron imaging. Chemical Physics Letters, 2012, 554(12):53-56.
[17] LIU Zh M, WANG Y M, ZHANG B, et al. Photodissociation dynamics of 2-iodotoluene investigated by femtosecond time-resolved mass spectrometry. Chinese Journal of Chemical Physics, 2016, 29(1):53-58.
[18] POULLAIN S M, SAMARTZIS P C, KITSOPOULOS T N. New insights into the photodissociation of methyl iodide at 193nm: stereodynamics and productbranching ratios. Physical Chemistry Chemical Physics, 2015, 17(44): 29958-29968. doi: 10.1039/C5CP04850H
[19] ABULIMITI B, QIU X J, DING Z H, et al. Studies on ultrafast dynamic of 3-picoline with femtosecond time-resolved photoelectron imaging. Acta Physico-Chimica Sinica, 2014, 30(1): 22-27.
[20] NOLLER B, POISSON L, MAKSIMENKA R, et al. Femtosecond dynamics of isolated phenylcarbenes. Journal of the American Chemical Society, 2008, 130(45): 14908-14909. doi: 10.1021/ja804133c
[21] FUSS W, SCHMID W E, TRUSHIN S A. Ultrafast dynamics of cyclohexene and cyclohexene-d10 excited at 200nm. Journal of the American Chemical Society, 2001, 123(33): 7101-7108.
[22] FUSS W, SCHMID W E, TRUSHIN S A. Time-resolved dissociative intense-laser field ionization for probing dynamics: Femtosecond photochemical ring opening of 1, 3-cyclohexadiene. The Journal of Chemical Physics, 2000, 112(19): 8347-8362. doi: 10.1063/1.481478
[23] WU G R, NEVILLE S P, SCHALK O. Excited state non-adiabatic dynamics of pyrrole: A time-resolved photoelectron spectroscopy and quantum dynamics study. The Journal of Chemical Physics, 2015, 142(7): 074302. doi: 10.1063/1.4907529
[24] MONTERO R, CONDE A P, OVEJAS V, et al. Ultrafastphotophysics of the isolated indole molecule.Journal of Physical Chemistry, 2012, A116(11): 2698-2703.
[25] LIU Y Z, TANG B F, SHEN H, et al. Probing ultrafast internal conversion of o-xylene via femtosecond time-resolved photoelectron imaging. Optics Express, 2010, 18(10): 5791-5801.
[26] DING Z H, QIU X J, XU Y Q, et al.Ultrafast internal conversion dynamics of benzyl chloride by femtosecond time-resolved photoelectron imaging. Acta Physico-Chimica Sinica, 2012, 28(12): 2761-2766.
[27] HORIO T, SPESYVTSEVJ R, SUZUKI T. Full observation of ultrafast cascaded radiationless transitions from S2 state of pyrazine using vacuum ultraviolet photoelectron imaging.The Journal of Chemical Physics, 2016, 145(4): 044306.
[28] SUZUKI T, WANG L, KOHGUCHI H. Femtosecond time-resolved photoelectron imaging on ultrafast electronic dephasing in an isolated molecule. The Journal of Chemical Physics, 1999, 111(11): 4859-4861. doi: 10.1063/1.479822
[29] QIU X J, QIN C C, WANG J, et al.Direct imaging of the electronic dephasing in benzene: Experimental evidence for ultrafast intersystem crossing of T3←S2 states. Physical Review, 2012, A86(3): 032505.
[30] LUCAS M, LIU Y, BRYANT R, et al. Vacuum ultraviolet photodissociation dynamics of methanol at 121.6. Chemical Physics Letters, 2015, 619(1):18-22.
[31] FARMANARA P, STERT V, RADLOFF W. Ultrafast photodissociation dynamics of acetone excited by femtosecond 155nm laser pulses. Chemical Physics Letters, 2000, 320(6): 697-702.
[32] TIMMERS H, SHIVARAM N, SANDHU A. Ultrafast dynamics of neutral superexcited oxygen: A direct measurement of the competition on between autoionization and predissociation. Physical Review Letters, 2012, 109(17): 173001. doi: 10.1103/PhysRevLett.109.173001
[33] SPESYVTSEVJ R, HORIO T, SUZUKI T. Excited-state dynamics of furan studied by sub-20fs time-resolved photoelectron imaging using 159nm pulses. The Journal of Chemical Physics, 2015, 143(1): 014302.