The stability of adducts in question, where a Lewis acid and a Lewis base form a bonded pair, depends on several factors such as bond strength, steric hindrance, and electronic effects. In this case, we are analyzing boron-containing adducts with different ligands.
To determine the stability order of these adducts, let's consider each adduct individually with the general formula \( H_3B\cdot L \):
Based on these considerations, the order of stability is:
\(H_3B\cdot PF_3 < H_3B\cdot CO < H_3B\cdot OMe_2 < H_3B\cdot NMe_3\)
This order is primarily because of the increasing donor strength from PF3 to NMe3, with steric factors playing a minor role compared to electronic stabilizations.
From the given following (A to D) cyclic structures, those which will not react with Tollen's reagent are : 
Compound 'P' undergoes the following sequence of reactions : (i) NH₃ (ii) $\Delta$ $\rightarrow$ Q (i) KOH, Br₂ (ii) CHCl₃, KOH (alc), $\Delta$ $\rightarrow$ NC-CH₃. 'P' is : 

One mole of a monoatomic ideal gas starting from state A, goes through B and C to state D, as shown in the figure. Total change in entropy (in J K\(^{-1}\)) during this process is ............... 
The number of chiral carbon centers in the following molecule is ............... 
A tube fitted with a semipermeable membrane is dipped into 0.001 M NaCl solution at 300 K as shown in the figure. Assume density of the solvent and solution are the same. At equilibrium, the height of the liquid column \( h \) (in cm) is ......... 