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I would like to move one DIV element inside another. For example, I want to move this (including all children):

<div id="source">
...
</div>

into this:

<div id="destination">
...
</div>

so that I have this:

<div id="destination">
  <div id="source">
    ...
  </div>
</div>
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7  
Just use $(target_element).append(to_be_inserted_element); –  Mohammad Areeb Siddiqui Jun 27 '13 at 20:07
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7 Answers 7

up vote 792 down vote accepted

You want to use the appendTo function:

$("#source")
    .appendTo("#destination");
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170  
Note that there's also a prependTo that does exactly what you think it does. –  Husky Jul 25 '11 at 11:32
12  
A warning that this may not work correctly in jQuery mobile, as it may create another copy of the element instead. –  Jordan Reiter Jun 19 '12 at 14:07
9  
does the appenTo create a copy or actually moves the whole div to the destination? (because if it copies, it would create erros when calling the div by the id) –  Hadrian Jul 12 '12 at 22:04
4  
Worked for me in jQuery Mobile. Thanks! –  Jason Jul 26 '12 at 22:57
15  
Here is an excellent article on Removing, Replacing and Moving Elements in jQuery: elated.com/articles/jquery-removing-replacing-moving-elements –  xhh Dec 3 '12 at 7:55
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my solution:

MOVE:

jQuery("#NodesToMove").detach().appendTo('#DestinationContainerNode')

COPY:

jQuery("#NodesToMove").appendTo('#DestinationContainerNode')

note .detach() use. When copy be careful do not duplicate id's.

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Made a JSFiddle for this solution: jsfiddle.net/Pixic/8VrdE –  Pixic Dec 7 '13 at 10:40
4  
Shame this doesn't have more upvotes. Its a much better solution than the top voted. –  carpii Dec 13 '13 at 12:00
11  
Best answer. Accepted answer creates a copy, doesn't move the element like the question asks for. –  paulscode Dec 17 '13 at 19:02
    
Exactly what I was looking for. –  Zuhaib Ali Jan 26 at 6:15
8  
Sorry, but Andrew Hare's accepted answer is correct - the detach is unnecessary. Try it in Pixic's JSFiddle above - if you remove the detach calls it works exactly the same, i.e. it does a move, NOT a copy. Here's the fork with just that one change: jsfiddle.net/D46y5 As documented in the API: api.jquery.com/appendTo : "If an element selected this way is inserted into a single location elsewhere in the DOM, it will be moved into the target (not cloned) and a new set consisting of the inserted element is returned" –  John - Not A Number Feb 4 at 4:34
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I just used:

$('#source').prependTo('#destination');

Which I grabbed from: http://www.elated.com/articles/jquery-removing-replacing-moving-elements/

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5  
Well, detach is useful when you want to hold on to the element and reinsert it later on, but in your example you reinsert it instantly anyway. –  Tim Büthe Sep 27 '12 at 15:56
1  
I'm afraid I'm not quite groking what you're getting at, could you provide sample code? –  kjc26ster Nov 3 '12 at 21:53
1  
I mean, prependTo, detaches the element from its original position an inserts it at the new one. The detach function on the other hand just detaches the selected element and you can save it in a variable to insert it into the DOM at a later point in time. The thing is, your detach call is unnecessary. Remove it and you will achieve the same effect. –  Tim Büthe Nov 4 '12 at 9:24
    
Good to know, thank you! –  kjc26ster Nov 9 '12 at 21:39
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Append

if the div where you want to put your element has content inside, and you want the element to show after the main content use:

  $("#element").append($("#other_element"));

Prepend

if the div where you want to put your element has content inside, and you want to show the element before the main content use:

$("#element").prepend($("#other_element"));

Put inside and replace content

if the div where you want to put your element has NO content you can use both append() or prepend() but you can use better:

$("#element").html("<div> my div will be putted inside #element </div>");

Cloning , then append, prepend, put inside

if you want to clone an element and prepend or append or put that inside replacing content, you can first do:

var _elementClone = $("#element").clone(); 

or

var _elementClone = $("#element").html();

then, you can choose from :

$("#mydiv").html(_elementClone); //this will replace #mydiv content with the element cloned

$("#mydiv").append(_elementClone); //this will append cloned element to the #mydiv content

$("#mydiv").prepend(_elementClone);//this will prepend cloned  element to the #mydiv content
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You can't use selectors with .append(). If you use a string as an argument, it will literally append "#other_element" to the element. –  Phil Bozak Mar 20 '13 at 4:51
    
@PhilBozak well yep my mistake :) , if you want your free to edit –  sbaaaang Mar 20 '13 at 8:19
    
I'm finding all the boldface a bit hard to read, but this is the most informative answer, so it gets my upvote. –  Michael Scheper Jun 26 at 2:22
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You can use:

To Insert After,

jQuery("#source").insertAfter("#destination");

To Insert inside another element,

jQuery("#source").appendTo("#destination");
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you may also try

$("#destination").html($("#source"))

but this will completely overwrite anything you have in #destination

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no way good using appendTo or prependTo; it is much more practical invoke jquery method before() and after()

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21  
That doesn't really make sense as before() or after() will cause the source div to become a direct sibling of the destination div. However OP wants the source div to become a child of the destination div. –  bszom Jul 9 '12 at 13:34
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protected by Sergey K. Mar 16 at 8:27

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