[1] Cooper S D, Raymer J H, Pellizzari E D, et al. The identification of polar organic-compounds found in consumer products and their toxicological properties[J]. Journal of Exposure Analysis and Environmental Epidemiology, 1995, 5(1): 57-75
[2] Rastogi S C, Heydorn S, Johansen J D, et al. Fragrance chemicals in domestic and occupational products[J]. Contact Dermatitis, 2001, 45(4): 221-225
[3] Kwon K D, Jo W K, Lim H J, et al. Characterization of emissions composition for selected household products available in Korea[J]. Journal of Hazardous Materials, 2007, 148(1/2): 192-198
[4] Nazaroff W W, Weschler C J. Cleaning products and air fresheners: exposure to primary and secondary air pollutants[J]. Atmospheric Environment, 2004, 38(18): 2841-2865
[5] Liu X Y, Mason M, Krebs K, et al. Full-scale chamber investigation and simulation of air freshener emissions in the presence of ozone[J]. Environmental Science Technology, 2004, 38(10): 2802-2812
[6] Fan Z H, Lioy P, Weschler C, et al. Ozone-initiated reactions with mixtures of volatile organic compounds under simulated indoor conditions[J]. Environmental Science Technology, 2003, 37(9): 1811-1821
[7] Li T H, Turpin B J, Shields H C, et al. Indoor hydrogen peroxide derived from ozone/d-limonene reactions[J]. Environmental Science Technology, 2002, 36(15): 3295-3302
[8] Weschler C J, Shields H C. Measurements of the hydroxyl radical in a manipulated but realistic indoor environment[J]. Environmental Science Technology, 1997, 31(12): 3719-3722
[9] Sarwar G, Olson D A, Corsi R L, et al. Indoor fine particles: The role of terpene emissions from consumer products[J]. Journal of the Air Waste Management Association, 2004, 54(3): 367-377
[10] Wolkoff P, Schneider T, Kildeso J, et al. Risk in cleaning: chemical and physical exposure[J]. Science of the Total Environment, 1998, 215(1/2): 135-156
[11] Sarwar G, Corsi R, Allen D, et al. The significance of secondary organic aerosol formation and growth in buildings: experimental and computational evidence[J]. Atmospheric Environment, 2003, 37(9/10): 1365-1381
[12] Destaillats H, Lunden M M, Singer B C, et al. Indoor secondary pollutants from household product emissions in the presence of ozone: A bench-scale chamber study[J]. Environmental Science Technology, 2006, 40(14): 4421-4428
[13] Long C M, Suh H H, Koutrakis P. Characterization of indoor particle sources using continuous mass and size monitors[J]. Journal of the Air Waste Management Association, 2000, 50(7): 1236-1250
[14] Bridges B. Fragrance: emerging health and environmental concerns[J]. Flavour and Fragrance Journal, 2002, 17(5): 361-371
[15] Wang T, Wei X L, Ding A J, et al. Increasing surface ozone concentrations in the background atmosphere of Southern China, 1994—2007[J]. Atmospheric Chemistry and Physics, 2009, 9(16): 6216-6226
[16] Weschler C J. Ozone in indoor environments: Concentration and chemistry[J]. Indoor Air-International Journal of Indoor Air Quality and Climate, 2000, 10(4): 269-288
[17] Weschler C J, Shields H C. Indoor ozone/terpene reactions as a source of indoor particles[J]. Atmospheric Environment, 1999, 33(15): 2301-2312
[18] Ongwandee M, Moonrinta R, Panyametheekul S, et al. Investigation of volatile organic compounds in office buildings in Bangkok, Thailand: Concentrations, sources, and occupant symptoms[J]. Building and Environment, 2011, 46(7): 1512-1522
[19] Wainman T, Zhang J F, Weschler C J, et al. Ozone and limonene in indoor air: A source of submicron particle exposure[J]. Environmental Health Perspectives, 2000, 108(12): 1139-1145
[20] Bonn B, Moortgat G K. Sesquiterpene ozonolysis: Origin of atmospheric new particle formation from biogenic hydrocarbons[J]. Geophysical Research Letters, 2003, 30(11), 1585, doi:10.1029/2003GL017000