We investigate the effect of Coulomb interactions on the tunneling density of states (DOS) of granular metallic systems at the onset of Coulomb blockade regime in two and three dimensions $(d=2,3)$. Using the renormalization group technique we derive the analytical expressions for the DOS as a function of temperature T and energy ε. We show that samples with the bare intergranular tunneling conductance gT⁰ less than the critical value gTC=(1∕2πd)ln(EC∕δ), where EC and δ are the charging energy and the mean energy level spacing in a single grain, respectively, are insulators with a hard gap in the DOS at temperatures T→0. In $3d$ systems the critical conductance gTC separates insulating and metallic phases at zero temperature, whereas in the granular films gTC separates insulating states with the hard (at gT⁰<gTC) and soft (at gT⁰>gTC) gaps. The gap in the DOS begins to develop at temperatures T*~ECgT⁰0.2em0exexp(-2πdgT⁰) and reaches the value Δ~T* at T→0.
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Beloborodov et al. (2004) studied this question.
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