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I have 2 div's.

div1 and div2. I want to get all the content from div1 and append them to div2 and then fadeOut div1.

I tried:

$('#div1').append('#div2');
$('#div1').fadeOut();

or

$('#div1').appendTo('#div2');
    $('#div1').fadeOut();

and

$('#div1').html('#div2');
$('#div1').fadeOut();

but none seems to work for me.

What Im I doing wrong?

share|improve this question
up vote 5 down vote accepted

The problem with .html() methods is that it converts the DOM elements to HTML and vice versa. You will loose all event handlers and data bound to those elements.

Use .contents() [docs] instead:

$("#div1").contents().appendTo('#div2').end().fadeOut();

or if you want to copy the content:

$("#div1").clone(true, true).contents().appendTo('#div2');
$("#div1").fadeOut();

It's always helpful to read the documentation when you use methods. E.g.

$('#div1').append('#div2');

will append the string #div2 to the element with ID div1. The documentation says:

Insert content, specified by the parameter, to the end of each element in the set of matched elements.

and

content: DOM element, HTML string, or jQuery object to insert at the end of each element in the set of matched elements.

Similar for $('#div1').html('#div2');:

htmlString: A string of HTML to set as the content of each matched element.

It will just replace the content of #div1 with the string '#div2'.

On the other side

$('#div1').appendTo('#div2');

will append the element with ID div1 to the element with ID div2:

Insert every element in the set of matched elements to the end of the target.

The jQuery documentation is quite good, I recommend to read it.

share|improve this answer
    
This will actually move the contents of #div1 rather than just copying it, which may be fine, but probably worth mentioning. It also means the fadeOut may not be seen because the contents of the element has moved. – James Allardice Jan 5 '12 at 13:37
    
@James: The question only mentions to get the content from a to b. But well, one could use copy as well. – Felix Kling Jan 5 '12 at 13:40
    
Yeah, just thought it might be worth pointing out the fact that while the visible result may be the same with this and the html solution, the resulting DOM will be different. However, the contents solution does mean the fadeOut may not be visible because there's nothing left in the element. – James Allardice Jan 5 '12 at 13:43
    
Thank you. Well explained – jQuerybeast Jan 5 '12 at 13:49
    
@James: You are absolutely right, it would not make sense to fade out the element if there is not content inside of it. It should work fine when cloning the node first though. Thank you for your input! – Felix Kling Jan 5 '12 at 14:05

You could get the HTML of #div1 and append that to #div2:

$("#div2").append($("#div1").html());
$('#div1').fadeOut();

Here's a working example.

Notice that this is similar to your third example, which didn't work because the html method takes a string and appends it to the selected elements. In your case, it would simply append the string literal "#div2". You need to actually get the HTML you want to append from #div1, and append that.

Also note that fadeOut simply hides the element (it sets display:none), and doesn't remove it from the DOM. I'm not sure if that's what you want or not.

share|improve this answer
    
Unless you want to replace the contents of div2, in which case you would replace append with html. – nikc.org Jan 5 '12 at 13:29
    
@nikc.org - Yes, although the question does say "append them to div2". – James Allardice Jan 5 '12 at 13:31
    
Nice and simple. – willem Jan 5 '12 at 13:31

This is a small example for you place this below text as HTML

<div id="div1">
    <p>hi</p>
</div>
<div id="div2"></div>

and the below script

$("#div2").append($("#div1").html());
$('#div1').fadeOut();
share|improve this answer

content = $('#div1').html();
$('#div2').append(content);
$('#div1').fadeOut();
share|improve this answer
    
if we use html() we would replace the content inside div2. – Murtaza Jan 5 '12 at 13:32
$('#div2').html($('#div2').html());

should work.

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