Using a combination of data from Match, POAM II, POAM III and MLS we show that the chemical loss rate of Arctic O3 during January of four cold winters (1992, 1995, 1996, and 2000) is consistently faster than can be accounted for by assuming complete activation of reactive chlorine and standard reaction kinetics. However, O3 loss rates measured during late February and early March 1996 are shown to be consistent with observations of ClO. The faster than expected O3 loss rates during January are shown to occur when air parcels are illuminated at high solar zenith angles (SZAs between ~85 and 94°), and to result in cumulative O3 loss of ~0.5 ppmv. The cause of the rapid January O3 loss is unclear, but may be related to a photolytic process at ...
The Arctic polar vortex exhibited widespread regions of low temperatures during the winter of 2005, ...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Lower stratospheric in situ observations are used to quantify both the accumulated ozone loss and th...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Lower stratosphericin situ observationsa re usedt o quantify both the accumulated ozone loss and the...
We present a detailed discussion of the chemical and dynamical processes in the Arctic winters 1996/...
Chemical ozone loss in winter 1991–1992 is recalculated based on observations of the HALOE satellite...
We present a detailed discussion of the chemical and dynamical processes in the Arctic winters 1996/...
The empirical relationship found between column-integrated Arctic ozone loss and the potential volum...
During Arctic winters with a cold, stable stratospheric circulation, reactions on the surface of pol...
During Arctic winters with a cold, stable stratospheric circulation, reactions on the surface of pol...
The Arctic polar vortex exhibited widespread regions of low temperatures during the winter of 2005, ...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Lower stratospheric in situ observations are used to quantify both the accumulated ozone loss and th...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Previous studies have shown that observed large O3 loss rates in cold Arctic Januaries cannot be exp...
Lower stratosphericin situ observationsa re usedt o quantify both the accumulated ozone loss and the...
We present a detailed discussion of the chemical and dynamical processes in the Arctic winters 1996/...
Chemical ozone loss in winter 1991–1992 is recalculated based on observations of the HALOE satellite...
We present a detailed discussion of the chemical and dynamical processes in the Arctic winters 1996/...
The empirical relationship found between column-integrated Arctic ozone loss and the potential volum...
During Arctic winters with a cold, stable stratospheric circulation, reactions on the surface of pol...
During Arctic winters with a cold, stable stratospheric circulation, reactions on the surface of pol...
The Arctic polar vortex exhibited widespread regions of low temperatures during the winter of 2005, ...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...
Chemical ozone loss rates inside the Arctic polar vortex were determined in early 1998 and early 199...