1860 United States presidential election in Rhode Island

1860 United States presidential election in Rhode Island

← 1856 November 2, 1860 1864 →

Nominee Abraham Lincoln Stephen Douglas (Dem) John C. Breckinridge (SD) John Bell (CU) Party Republican Fusion Alliance Democratic Southern Democratic Constitutional Union Home state Illinois Illinois (Douglas) Kentucky (Breckinridge) Tennessee (Bell) Running mate Hannibal Hamlin Herschel V. Johnson (Dem) Joseph Lane (SD) Edward Everett (CU) Electoral vote 4 0 Popular vote 12,244 7,707 Percentage 61.37% 38.63%

County Results Lincoln   50-60%   60-70%

President before election James Buchanan Democratic Elected President Abraham Lincoln Republican

Elections in Rhode Island
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Ballot measures 2020 Question 1
Providence Mayoral elections 1998 2002 2006 2010 2014 2018 2022
v t e

The 1860 United States presidential election in Rhode Island took place on November 2, 1860, as part of the 1860 United States presidential election. Voters chose four electors of the Electoral College, who voted for president and vice president.

Rhode Island was won by Republican candidate Abraham Lincoln, who won by a margin of 22.74%.