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1 o activation steps using phosphoric acid and potassium hydroxide.
2 nyl alcohol) with the appropriate alcohol in potassium hydroxide.
3 material and energy costs, primarily due to potassium hydroxide.
4 luxing xylene in the presence of 10 equiv of potassium hydroxide.
6 onded structures have focused on doping with potassium hydroxide and have had success in partially in
7 by the modified wet-chemical method where in potassium hydroxide and zinc nitrate were used as precur
8 ion rate results from the utilisation of 1 M potassium hydroxide as a draw solution to extract water
9 temperatures and atmospheric pressure, using potassium hydroxide as base in a two-phase (water/dioxan
11 potential (E(1/2)) of 0.87 V vs RHE in 1.0 M potassium hydroxide at 1600 rpm, rivaling previous repor
13 d to react with tert-butyl hydroperoxide and potassium hydroxide, demonstrating that this type of str
14 eved CO(2) electroreduction on copper in 7 M potassium hydroxide electrolyte (pH ~ 15) with an ethyle
16 s, carbon nanotubes, and a polyvinyl alcohol-potassium hydroxide gel as the anode, cathode, and solid
17 tal sterols the samples were saponified with potassium hydroxide in ethanolic solution and the unsapo
18 hylbutan-2-one in the presence of sodium and potassium hydroxide in methanol to yield sodium and pota
19 The corresponding potassium salts form when potassium hydroxide is employed as the base, while lithi
20 f coconut shell (CS), particularly examining potassium hydroxide (KOH) and sodium hydroxide (NaOH) ac
21 , (2) pretreatment confirmatory testing with potassium hydroxide (KOH) stain followed by periodic aci
25 emical (PEC) water oxidation in both aqueous potassium hydroxide (KOH, pH = 14) and aqueous borate bu
26 on (AC) and solid (biomass): liquid (aqueous Potassium hydroxide-KOH) ratio (S: L ratio) were optimiz
29 hae, or both on a wet preparation (including potassium hydroxide preparation) of vaginal secretions.
30 tection via derivatization with an ethanolic potassium hydroxide solution resulted in fluorescent cou
33 f 4 was removed by hydrolysis with ethanolic potassium hydroxide to form 1-O-hexadecyl-2-O-methyl-3-O
35 ent system enables this through the use of a potassium hydroxide-tolerant and hydrophilic FO membrane
36 ntaminated maize samples were incubated with potassium hydroxide, trifluoromethanesulfonic acid and s
37 urements of K(g) concentrations in saturated potassium hydroxide vapor in the temperature range 950-1
40 t-of-care tests, including vaginal pH (15%), potassium hydroxide/whiff (21%), and wet mount microscop
41 were processed by corneal smear microscopy (potassium hydroxide with calcofluor white and Gram stain