1860 United States presidential election in Pennsylvania


The 1860 United States presidential election in Pennsylvania took place on November 6, 1860, as part of the 1860 United States presidential election. Voters chose 27 representatives, or electors to the Electoral College, who voted for president and vice president.
The Democratic Party chose its slate of electors before the National Convention in Charleston, South Carolina. Since this was decided before the party split, both Douglas supporters and Breckinridge supporters claimed the right for their man to be considered the party candidate and the support of the electoral slate. Eventually, the state party worked out an agreement: if either candidate could win the national election with Pennsylvania's electoral vote, then all her electoral votes would go to that candidate. Of the 27 electoral candidates, 15 were Breckinridge supporters; the remaining 12 were for Douglas. This was often referred to as the Reading electoral slate, because it was in that city that the state party chose it.
Not all of the Douglas supporters agreed to the Reading slate deal and established a separate Douglas-only ticket. This slate comprised the 12 Douglas electoral candidates on the Reading ticket, and 15 additional Douglas supporters. This ticket was usually referred to as the Straight Douglas ticket. Thus 12 electoral candidates appeared on 2 tickets, Reading and Straight Douglas.
Pennsylvania voted for the Republican candidate, Abraham Lincoln, over the fusion ticket. Lincoln won Pennsylvania by a margin of 18.72%.
Pennsylvania in the election was 1 of the 4 states that had a fusion ticket for the Democratic Party. The other 3 states were New Jersey, New York and Rhode Island.

Results