1896 United States presidential election in New Hampshire

1896 United States presidential election in New Hampshire

← 1892 November 3, 1896 1900 →
 
Nominee William McKinley William Jennings Bryan
Party Republican Democratic
Alliance Populist
Home state Ohio Nebraska
Running mate Garret Hobart Arthur Sewall
Electoral vote 4 0
Popular vote 57,444 21,650
Percentage 68.66% 25.88%

County Results
McKinley
  60-70%
  70-80%


President before election

Grover Cleveland
Democratic

Elected President

William McKinley
Republican

The 1896 United States presidential election in New Hampshire took place on November 3, 1896 as part of the 1896 United States presidential election. Voters chose four representatives, or electors to the Electoral College, who voted for president and vice president.

New Hampshire overwhelmingly voted for the Republican nominee, former governor of Ohio William McKinley, over the Democratic nominee, former U.S. Representative from Nebraska William Jennings Bryan. McKinley won the state by a margin of 42.78%.

With 68.66% of the popular vote, New Hampshire would be McKinley's third strongest victory in terms of percentage in the popular vote after neighboring Vermont and Massachusetts.[1] The state was also the best performance for National Democratic Party candidate John M. Palmer, who won 4.21% of the vote.

Bryan, running on a platform of free silver, appealed strongly to Western miners and farmers in the 1896 election, but held little-to-no appeal in the Northeastern states like New Hampshire. This was the first time since 1860 that a Republican won every county in the state.

Bryan would lose New Hampshire to McKinley again four years later and would later lose the state again in 1908 to William Howard Taft.

  1. ^ "1896 Presidential Election Statistics". Dave Leip’s Atlas of U.S. Presidential Elections. Retrieved March 5, 2018.