Two-dimensional (2D) halide perovskites come in several distinct structural classes and exhibit great tunability, stability and high potential for photovoltaic applications. Here, we report a new series of hybrid 2D perovskites in the Dion−Jacobson (DJ) class based on aromatic m-Phenylenediammonium (mPDA) dications. The crystal structures of the DJ perovskite materials (mPDA)MA n-1 Pb n I 3n+1 (n = 1, 2, 3) were solved and refined using single crystal X-ray crystallography. The results indicate a short I•••I interlayer distance of ~4.00 − 4.04 Å for the (mPDA)MA n-1 Pb n I 3n+1 (n = 2 and 3) structures, which is the shortest among DJ perovskites. However, Pb−I−Pb angles are as small as ~158-160º reflecting large distortion of the inorganic framework that results in larger band gaps for these materials compared to other DJ analogues. Density functional theory calculations suggest appreciable dispersion in the stacking direction, unlike the band structures of the Ruddlesden-Popper (RP) phases which exhibit flat bands along the stacking direction. This is a consequence of a short interlayer I•••I distances that can lead to inter-layer electronic coupling across the layers. The solution deposited films (nominal (mPDA)MA n-1 Pb n I 3n+1 compositions of n = 1−6) reveal improved surface coverage with increasing nominal n value with the higher-n films being composed of a mixture of n=1 and bulk 3D MAPbI 3 perovskites. The films made from solutions of these materials behave differently from those of other 2D iodide perovskites and their solar cells have a mixture of n=1 DJ and MAPbI 3 as the light absorbing semiconductors.