1828 United States presidential election in New Jersey

Main article: 1828 United States presidential election
1828 United States presidential election in New Jersey
← 1824 October 31 – December 2, 1828 1832 →
 
Nominee John Quincy Adams Andrew Jackson
Party National Republican Democratic
Home state Massachusetts Tennessee
Running mate Richard Rush John C. Calhoun
Electoral vote 8 0
Popular vote 23,753 21,809
Percentage 52.12% 47.86%
County Results
President before election

John Quincy Adams
National Republican

Elected President

Andrew Jackson
Democratic

Elections in New Jersey
Federal government
U.S. President
U.S. Senate
U.S. House of Representatives
State government
General elections
Gubernatorial elections
Senate elections
General Assembly elections
Newark
Mayoral elections
Jersey City
Mayoral elections
Hoboken
Mayoral elections
Atlantic City
Mayoral elections

The 1828 United States presidential election in New Jersey took place between October 31 and December 2, 1828, as part of the 1828 United States presidential election. Voters chose eight representatives, or electors to the Electoral College, who voted for President and Vice President.

New Jersey voted for the National Republican candidate, John Quincy Adams, over the Democratic candidate, Andrew Jackson. Adams won New Jersey by a narrow margin of 4.26%.

Results

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1828 United States presidential election in New Jersey[1]
Party Candidate Votes Percentage Electoral votes
National Republican John Quincy Adams (incumbent) 23,753 52.12% 8
Democratic Andrew Jackson 21,809 47.86% 0
N/A Other 8 0.02% 0
Totals 45,570 100.0% 8

See also

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References

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  1. ^ "1828 Presidential General Election Results - New Jersey". U.S. Election Atlas. Retrieved February 28, 2013.
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