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1 ccessible zone and the coarser matrix (i.e., back diffusion).
2 use of the larger size of the RFOs, prevents back diffusion.
3 ) were calculated and corrected for NO axial back-diffusion.
4 opose reflects amplification of nitric oxide back-diffusion, an increase likely associated with a pre
5 tion of the oxidant delivered likely lost by back-diffusion and not involved in hydrocarbon destructi
6 lume recombination collection efficiency and back diffusion collection efficiency for continuous and
7 hambers considering volume recombination and back diffusion effects; the affecting parameters were st
8 ectrolysis were found to be a result of NaCl back diffusion from the outer side of the membrane due t
9 bility systems to assess the significance of back diffusion from thin layers.
10  the loss of a defined plateau region and by back-diffusion from the bottom of the cell.
11 ell intracellular pH (pHi), injury, and acid back-diffusion in response to a luminal acid challenge i
12 ring contributions of, volume recombination, back-diffusion loss and initial recombination, the later
13 k matrices as well as the rate and extent of back-diffusion may be substantially mitigated in rocks t
14  cell surface, allowing for cell injury from back diffusion of gastric acid.
15 retardation solutes have a greater long-term back diffusion risk.
16 s and (3) an energy cascade to limit carrier back diffusion towards the interface.
17 reduced in DeltaF/DeltaF mice, although acid back-diffusion was similar to controls.
18               Bicarbonate secretion and acid back-diffusion were measured in a perfused duodenal loop
19 olecules in this field is counterbalanced by back-diffusion within seconds.