The space between the plates of a parallel-plate capacitor (Fig. 4.24) is filled with two slabs of linear dielectric material. Each slab has thickness a, so the total distance between the plates is 24. Slab I has a dielectric constant of 2, and slab 2 has a dielectric constant of 1.5. The free charge density on the top plate is o and on the bottom plate-o. +0 Slab 1 Slab 2 FIGURE 4.24 (a) Find the electric displacement D in each slab. (b) Find the electric field E in each slab. (C) Find the polarization P in each slab. (d) Find the potential difference between the plates. (e) Find the location and amount of all bound charge. (f) Now that you know all the charge (free and bound), recalculate the field in each slab, and confirm your answer to (b).