1804 United States presidential election in Rhode Island

Main article: 1804 United States presidential election

1804 United States presidential election in Rhode Island

← 1800 November 2 - December 5, 1804 1808 →

Nominee Thomas Jefferson Charles C. Pinckney (not on ballot) Party Democratic-Republican Federalist Home state Virginia South Carolina Running mate George Clinton Rufus King Electoral vote 4 0 Popular vote 1,312 — Percentage 100.00% —

President before election Thomas Jefferson Democratic-Republican Elected President Thomas Jefferson Democratic-Republican

The 1804 United States presidential election in Rhode Island took place as part of the 1804 United States presidential election. Voters chose 4 representatives, or electors to the Electoral College who voted for president and vice president.

Rhode Island voted for the Democratic-Republican candidate, Thomas Jefferson, over the Federalist candidate, Charles C. Pinckney. Jefferson won Rhode Island by a margin of 100.00%, the largest margin and landslide victory ever since in the state. Because Pinckney was not on the ballot.

Results

1804 United States presidential election in Rhode Island[1]
Party		Candidate	Votes	Percentage	Electoral votes
	Democratic-Republican	Thomas Jefferson (incumbent)	1,312	100.00%	4
	Federalist	Charles C. Pinckney (not on ballot)	—	—	0
Totals			1,312	100.0%	4

See also

• United States presidential elections in Rhode Island

References

1. "A New Nation Votes". elections.lib.tufts.edu. Retrieved 2024-08-31.