1800 United States presidential election in Delaware
The 1800 United States presidential election in Delaware took place between 31 October and 3 December 1800, as part of the 1800 United States presidential election. Voters chose three representatives, or electors to the Electoral College, who voted for President and Vice President.
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| Elections in Delaware |
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Delaware cast three electoral votes for the Federalist candidate and incumbent President John Adams over the Democratic-Republican candidate and incumbent Vice President Thomas Jefferson. These electors were elected by the Delaware General Assembly, the state legislature, rather than by popular vote. The three electoral votes for Vice president were cast for Adam's running mate Charles C. Pinckney from South Carolina.[1]
Results
| 1800 United States presidential election in Delaware[2] | |||||
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| Party | Candidate | Votes | Percentage | Electoral votes | |
| Federalist | John Adams (incumbent) | – | 100.00% | 3 | |
| Democratic-Republican | Thomas Jefferson | – | – | 0 | |
| Totals | – | 100.00% | 3 | ||
References
- "1800 Presidential General Election Results". U.S. Election Atlas. Retrieved July 9, 2023.
- "1800 Presidential Election". 270towin.com. Retrieved July 9, 2023.
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| Other 1800 elections | ||
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