[1] Chun M K, Teppo E A. Laser resonator: an electrooptically Q-switched Porro prism device[J]. Applied Optics, 15, 1942-1946(1976).
[2] Agrawal L, Bhardwaj A, Pal S et al. Resonator design and performance estimation for a space-based laser transmitter[J]. Proceedings of SPIE, 6409, 64091E(2006).
[3] Krebs D J, Novo-Gradac A M, Li S X et al. Compact, passively Q-switched Nd∶YAG laser for the MESSENGER mission to Mercury[J]. Applied Optics, 44, 1715-1718(2005).
[4] Afzal R S. Performance of the GLAS laser transmitter[J]. Proceedings of SPIE, 6100, 610020(2006).
[5] Afzal R S. Mars observer laser altimeter: laser transmitter[J]. Applied Optics, 33, 3184-3188(1994).
[6] Cole T D. NEAR laser rangefinder: a tool for the mapping and topologic study of asteroid 433 eros[J]. Johns Hopkins Apl Technical Digest, 19, 142-157(1998).
[7] Kushina M E, Grote M G, Wiswall C E et al. Clementine: diode-pumped laser qualification[J]. Proceedings of SPIE, 2379, 137-140(1995).
[8] Hovis F E. Qualification of the laser transmitter for the CALIPSO aerosol lidar mission[J]. Proceedings of SPIE, 6100, 61001X(2006).
[9] Agrawal L, Bhardwaj A, Pal S et al. Jones matrix formulation of a Porro prism laser resonator with waveplates: theoretical and experimental analysis[J]. Applied Physics B, 89, 349-357(2007).
[10] Shen J P, Ding C F. Characteristic analysis of Z-shaped orthogonal Porro-prism resonator[J]. Laser & Infrared, 42, 283-287(2012).
[11] Luo X, Wang P F. Research on polarization coupling output characteristics of Porro prism cavity[J]. Laser & Infrared, 46, 1244-1249(2016).
[12] Gil J, Bernabeu E. Obtainment of the polarizing and retardation parameters of a non-depolarizing optical system from the polar decomposition of its Mueller matrix[J]. Optik, 76, 67-71(1986).
[13] Lu Y X, Lü B D. Matrix optics[M], 323-338(1989).